TWI808278B - Mooring rope monitoring system, mooring management system, mooring rope monitoring method and mooring management method - Google Patents

Mooring rope monitoring system, mooring management system, mooring rope monitoring method and mooring management method Download PDF

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TWI808278B
TWI808278B TW108142966A TW108142966A TWI808278B TW I808278 B TWI808278 B TW I808278B TW 108142966 A TW108142966 A TW 108142966A TW 108142966 A TW108142966 A TW 108142966A TW I808278 B TWI808278 B TW I808278B
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mooring
rope
elongation
tension
detection
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TW108142966A
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TW202037530A (en
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金辰一郎
内海孝二
西正寛
小見慶樹
脇田薫平
伊藤翔
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日商帝人股份有限公司
日商特薩克股份有限公司
日商商船三井股份有限公司
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • B63B21/20Adaptations of chains, ropes, hawsers, or the like, or of parts thereof
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • B63B21/04Fastening or guiding equipment for chains, ropes, hawsers, or the like
    • B63B21/06Bollards
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01LMEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
    • G01L5/00Apparatus for, or methods of, measuring force, work, mechanical power, or torque, specially adapted for specific purposes
    • G01L5/04Apparatus for, or methods of, measuring force, work, mechanical power, or torque, specially adapted for specific purposes for measuring tension in flexible members, e.g. ropes, cables, wires, threads, belts or bands
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01LMEASURING FORCE, STRESS, TORQUE, WORK, MECHANICAL POWER, MECHANICAL EFFICIENCY, OR FLUID PRESSURE
    • G01L5/00Apparatus for, or methods of, measuring force, work, mechanical power, or torque, specially adapted for specific purposes
    • G01L5/04Apparatus for, or methods of, measuring force, work, mechanical power, or torque, specially adapted for specific purposes for measuring tension in flexible members, e.g. ropes, cables, wires, threads, belts or bands
    • G01L5/10Apparatus for, or methods of, measuring force, work, mechanical power, or torque, specially adapted for specific purposes for measuring tension in flexible members, e.g. ropes, cables, wires, threads, belts or bands using electrical means
    • G01L5/101Apparatus for, or methods of, measuring force, work, mechanical power, or torque, specially adapted for specific purposes for measuring tension in flexible members, e.g. ropes, cables, wires, threads, belts or bands using electrical means using sensors inserted into the flexible member
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • B63B2021/003Mooring or anchoring equipment, not otherwise provided for
    • B63B2021/008Load monitors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B63SHIPS OR OTHER WATERBORNE VESSELS; RELATED EQUIPMENT
    • B63BSHIPS OR OTHER WATERBORNE VESSELS; EQUIPMENT FOR SHIPPING 
    • B63B21/00Tying-up; Shifting, towing, or pushing equipment; Anchoring
    • B63B21/20Adaptations of chains, ropes, hawsers, or the like, or of parts thereof
    • B63B2021/203Mooring cables or ropes, hawsers, or the like; Adaptations thereof

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  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • Ocean & Marine Engineering (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Analytical Chemistry (AREA)
  • Testing Or Calibration Of Command Recording Devices (AREA)
  • Ropes Or Cables (AREA)
  • Investigating Strength Of Materials By Application Of Mechanical Stress (AREA)
  • Maintenance And Inspection Apparatuses For Elevators (AREA)
  • Emergency Alarm Devices (AREA)
  • Alarm Systems (AREA)

Abstract

本發明之繋泊索監視系統係具備有伸長率檢測裝置20及控制裝置43而所構成,該伸長率檢測裝置20係於使用繋泊索30將船舶1繋泊於棧橋2時,檢測構成繋泊索30的纖維繩之伸長率βm,該控制裝置43係根據伸長率檢測裝置20之檢測值αm、βm而算出繋泊索30之張力Tm。藉此,以相對簡單之構成,於使用繋泊索之繋泊作業中、繋泊作業完成時及繋泊中之任一情況均始終檢測繋泊索之張力,從而預測及避免繋泊索之斷裂。 The mooring rope monitoring system of the present invention is composed of an elongation detection device 20 and a control device 43. The elongation detection device 20 detects the elongation βm of the fiber rope constituting the mooring rope 30 when the ship 1 is moored to the pier 2 using the mooring rope 30. The control device 43 calculates the tension Tm of the mooring rope 30 based on the detection values αm and βm of the elongation detection device 20. Thereby, with a relatively simple configuration, the tension of the mooring rope is always detected during the mooring operation using the mooring rope, when the mooring operation is completed, and in any situation during mooring, thereby predicting and avoiding the breakage of the mooring rope.

Description

繫泊索監視系統、繫泊管理系統、繫泊索監視方法及繫泊管理方法 Mooring rope monitoring system, mooring management system, mooring rope monitoring method and mooring management method

本發明係關於一種將船舶利用以纖維繩所構成的繋泊索繋泊於棧橋等時所使用的繋泊索監視系統、繋泊管理系統、繋泊索監視方法及繋泊管理方法。 The present invention relates to a mooring rope monitoring system, a mooring management system, a mooring rope monitoring method, and a mooring management method used when a ship is moored to a pier or the like with a mooring rope made of fiber ropes.

對於遠洋航行船或內河航行船等相對較大之船舶,當將船舶繋泊於棧橋或碼頭等之陸地側時,將防舷材配置於船舶與陸地側之間,將船舶側之繋泊索之前端之輪掛於棧橋側之繋泊用構件(樁柱等),利用繋泊用機器(繋泊絞車等)捲取繋泊索,由此將船舶繋泊於陸地側。 For relatively large ships such as ocean-going ships or inland river ships, when the ship is moored on the land side of a pier or wharf, the anti-skid material is arranged between the ship and the land side, and the wheel at the front end of the mooring rope on the ship side is hung on the mooring member (pillar, etc.) on the side of the trestle, and the mooring line is wound by a mooring machine (mooring winch, etc.), thereby mooring the ship on the land side.

該被繋泊的船舶根據潮水漲落、船舶載貨之裝卸狀態之變化而浮沉。因此,該繋泊索之張力不僅受到船體因波浪而搖擺所造成之影響,亦受到氣象.海象之變化、潮流之變化、來自在附近航行之船舶的波浪等之多種的影響。因此,不僅需要監視繋泊時之各繋泊索之張力,亦需要對應該等之變化即時地監視繋泊索之張力。 The moored ship floats and sinks according to the fluctuation of the tide and the loading and unloading status of the ship's cargo. Therefore, the tension of the mooring line is not only affected by the swaying of the hull due to waves, but also by the weather. Changes in walruses, changes in currents, waves from ships sailing nearby, and many other influences. Therefore, it is necessary not only to monitor the tension of each mooring line at the time of mooring, but also to monitor the tension of the mooring line in real time in response to such changes.

於該船舶之繋泊中,通常使用纖維繩作為繋泊索,若對該纖維繩施加過大之荷重而斷裂,則船舶移動,或碰撞到棧橋等,或離開棧橋等而漂流。進而,關於該纖維繩,延伸量與張力之 關係除了存在有遲滯以外亦會隨經年變化而劣化,故存在有難以推斷繋泊索之斷裂荷重、彈性係數,難以預測繋泊狀態、船體運動及繋泊索之斷裂之關係的問題。 In the mooring of the ship, a fiber rope is usually used as a mooring rope, and if the fiber rope is broken due to an excessive load, the ship moves, collides with a pier or the like, or drifts away from the pier or the like. Furthermore, regarding this fiber rope, the relationship between elongation and tension In addition to the hysteresis, the relationship will also deteriorate with the years, so it is difficult to infer the breaking load and elastic coefficient of the mooring line, and it is difficult to predict the relationship between the mooring state, the movement of the hull and the breakage of the mooring line.

因此,例如,如日本專利特開平10-109686號公報及日本專利特開2005-153595號公報中所記載般,為了檢測繋泊索之張力而預防斷裂事故,例如對作用於繋留索(或繋泊索)之中間部所接觸的滾輪等之中間接觸部的荷重進行檢測,從該荷重推斷繋留索之張力,或者例如,如日本專利特開2005-153595號公報所記載般,利用設置於捲取筒的應變計等檢測繋泊索之張力,或者例如,如日本專利特開2002-211478號公報中所記載般,藉由安裝於繋泊絞車之手柄式刹車之拉桿的測力計,檢測繋泊後之繋泊索之張力。 Therefore, for example, as described in Japanese Patent Laid-Open No. 10-109686 and Japanese Patent Laid-Open No. 2005-153595, in order to detect the tension of the mooring line and prevent breakage accidents, for example, the load acting on the intermediate contact portion of the roller in contact with the middle portion of the mooring line (or mooring line) is detected, and the tension of the mooring line is estimated from the load, or, for example, as in Japanese Patent Laid-Open No. 2005-153595 As described in the publication, the tension of the mooring rope is detected by using a strain gauge installed on the reel, or, for example, as described in Japanese Patent Application Laid-Open No. 2002-211478, the tension of the mooring rope after mooring is detected by a dynamometer installed on the pull rod of the handle brake of the mooring winch.

於利用該測力計檢測繋泊索之張力時,存在有只能在利用手柄式刹車將繋泊索之捲取筒固定時進行測量,於繋泊索之捲入時或回捲時無法測量的問題。又,於專利文獻1(日本專利特開平10-109686號公報)之構成中,存在有在繋泊索取回方面上所具有的限制,並且根據繋泊索直徑、硬度及入射角而產生負荷變動的問題。 When using the dynamometer to detect the tension of the mooring rope, there is a problem that it can only be measured when the mooring rope reel is fixed by the handle brake, but cannot be measured when the mooring rope is wound in or rewound. Also, in the configuration of Patent Document 1 (Japanese Patent Application Laid-Open No. 10-109686 ), there is a limitation in retrieving the mooring line, and there is a problem that the load varies depending on the diameter, hardness, and incident angle of the mooring line.

又,例如,如日本專利特開平07-232693號公報中所記載般,作為陸地側之繋泊索之張力測定裝置,亦存在有自被安裝於基地之繋船樁之各掛鉤的張力感測器(應變計)所獲得者。於此情形時,由於張力感測器被設置於基地、棧橋之陸地側,故通常需要對被設置於船舶側的繋泊索監視系統發送資料。於此情形時,存在有無法使用在不具有等張力測定裝置的棧橋等的問題。 Also, for example, as described in Japanese Patent Application Laid-Open No. 07-232693, as a tension measuring device for mooring ropes on the land side, there are tension sensors (strain gauges) obtained from each hook of the bollard installed at the base. In this case, since the tension sensor is installed on the land side of the base or the pier, it is usually necessary to send data to the mooring rope monitoring system installed on the ship side. In this case, there is a problem that it cannot be used on a bridge or the like that does not have an isotensiometry device.

[先前技術文獻] [Prior Art Literature]

[專利文獻] [Patent Document]

[專利文獻1]日本專利特開平10-109686號公報 [Patent Document 1] Japanese Patent Laid-Open No. 10-109686

[專利文獻2]日本專利特開2005-153595號公報 [Patent Document 2] Japanese Patent Laid-Open No. 2005-153595

[專利文獻3]日本專利特開2002-211478號公報 [Patent Document 3] Japanese Patent Laid-Open No. 2002-211478

[專利文獻4]日本專利特開平07-232693號公報 [Patent Document 4] Japanese Patent Laid-Open No. 07-232693

本發明係鑒於上述情況而完成者,其目的在於提供一種繋泊索監視系統、繋泊管理系統、繋泊索監視方法及繋泊管理方法,能以相對簡單之構成,於使用繋泊索之繋泊作業中、繋泊作業完成時及繋泊中之任一情況始終檢測繋泊索之張力,從而可預測及避免繋泊索之斷裂。 The present invention is made in view of the above circumstances, and its purpose is to provide a mooring rope monitoring system, mooring management system, mooring rope monitoring method and mooring management method, which can detect the tension of the mooring rope during the mooring operation using the mooring rope, when the mooring operation is completed, or in any situation during mooring, so that the breakage of the mooring rope can be predicted and avoided.

用以達成上述目的之本發明之繋泊索監視系統係具備有伸長率檢測裝置及控制裝置所構成,該伸長率檢測裝置檢測構成繋泊船舶之繋泊索的纖維繩之伸長率,該控制裝置根據上述伸長率檢測裝置之檢測值算出上述繋泊索之張力。 The mooring rope monitoring system of the present invention to achieve the above object is composed of an elongation detection device and a control device. The elongation detection device detects the elongation of the fiber rope constituting the mooring rope of a mooring ship. The control device calculates the tension of the mooring rope based on the detection value of the elongation detection device.

根據該構成,並非根據對以纖維繩所構成的繋泊索所施加的張力(荷重)算出繋泊索之張力,而是根據預先被設定的伸長率(延伸率)與張力之關係,或者基於當時所剛獲得的伸長率與張力之關係,從伸長率檢測裝置之檢測值算出繋泊索之張力,故不僅可算出繋泊作業中、繋泊作業結束時的繋泊索之張力,亦可算出正在繋泊時的繋泊索之張力。藉此,可一面監視各繋泊索之張力一面進行繋泊作業,故而可一面操作或控制繋泊絞車等之繋泊用設備而將 各繋泊索之張力調整為更適當之張力,一面高效率地進行繋泊作業。 According to this configuration, the tension of the mooring rope is not calculated from the tension (load) applied to the mooring rope made of fiber ropes, but the tension of the mooring rope is calculated from the detection value of the elongation detection device based on the relationship between the preset elongation (elongation) and the tension, or based on the relationship between the elongation and the tension just obtained at that time. In this way, the mooring operation can be carried out while monitoring the tension of each mooring rope, so it is possible to operate or control mooring equipment such as mooring winches The tension of each mooring rope is adjusted to a more appropriate tension, so that the mooring operation can be carried out efficiently.

又,該伸長率檢測裝置可對繋泊索中存在有伸長率檢測裝置之檢測部的特定之測定對象部分之伸長率進行檢測,故可算出該測定對象部分之張力。因此,可測定自繋泊用設備經由甲板上之繋泊用構件(繋纜樁、繋泊孔等)連接於陸側之繋泊用構件(樁柱、繋船樁等)的繋泊索之各部分之張力。因此,可考慮到繋泊用構件分擔繋泊力之影響,從而更高精度地測量張力。 In addition, since the elongation detection device can detect the elongation of a specific measurement target portion in which the detection portion of the elongation detection device exists in the mooring rope, the tension of the measurement target portion can be calculated. Therefore, the tension of each part of the mooring rope connected from the mooring equipment to the mooring member (pillar, bollard, etc.) on the land side via the mooring member (bitt, mooring hole, etc.) on the deck can be measured. Therefore, it is possible to measure the tension with higher precision by taking into account that the mooring members share the influence of the mooring force.

又,由於在繋泊索設置有檢測部,故無須測定陸地側之繋泊索之張力,只要預先獲得伸長率與張力之關係,則可利用僅船內側的伸長率檢測裝置及控制裝置監視繋泊索之張力,故無關於棧橋側之設備,因此,即便繋泊於無繋泊索之張力測定裝置的棧橋等,亦可監視繋泊時(繋泊作業中、繋泊作業完成時、繋泊中)的繋泊索之張力。 Also, since the mooring rope is equipped with a detection unit, there is no need to measure the tension of the mooring rope on the land side. As long as the relationship between the elongation and the tension is obtained in advance, the tension of the mooring rope can be monitored by using only the elongation detection device and the control device on the inside of the ship, so there is no equipment on the bridge side. Therefore, even when mooring on a bridge without a tension measuring device for the mooring rope, the tension of the mooring rope can be monitored during mooring (during mooring operation, when mooring operation is completed, or during mooring).

於上述繋泊索監視系統中,上述控制裝置係以如下方式所構成:於上述伸長率檢測裝置之檢測值或根據上述檢測值所算出的與上述繋泊索之張力相關的計算值超過預先被設定的警報值(閾值)之情形時,則進行輸出警報或輸出信號之任一操作,如此可發揮如下效果。 In the above-mentioned mooring rope monitoring system, the above-mentioned control device is constituted as follows: when the detection value of the above-mentioned elongation detection device or the calculation value related to the tension of the mooring rope calculated based on the above-mentioned detection value exceeds a preset alarm value (threshold value), either operation of outputting an alarm or outputting a signal can be achieved.

於該伸長率檢測裝置中,即便為繋泊中,亦可即時地檢測張力,故而對於追隨於潮水漲落、船舶之裝卸狀態、氣象.海象或潮流等之干擾之變化而變化之張力,可基於繋泊中之即時之檢測值或計算值進行輸出警報或輸出信號之任一操作。因此,於纖維繩斷裂之前可高精度地預測其斷裂,基於該預測結果以手動或自動 藉由繋泊用設備進行繋泊索之回捲等,由此可使將要斷裂之繋泊索鬆弛,從而可避免繋泊索之斷裂。 In this elongation detection device, even during mooring, the tension can be detected in real time, so it is useful for following the tide fluctuation, loading and unloading state of the ship, weather. Any operation of outputting an alarm or outputting a signal can be performed based on the real-time detected value or calculated value during mooring, based on the tension that changes due to changes in disturbances such as walruses or tidal currents. Therefore, the breakage of the fiber rope can be predicted with high precision before the breakage of the fiber rope, and based on the prediction result, manual or automatic By rewinding the mooring rope with the mooring equipment, the mooring rope that is about to break can be loosened, and the breakage of the mooring rope can be avoided.

再者,該預先被設定的警報值之設定時期只要在判定纖維繩之張力之推斷值之前即可。又,警報值亦未必為固定值,亦可為基於潮水漲落、船舶之裝卸狀態、氣象.海象或潮流等之干擾之變化或者繋泊索之劣化程度而被更新的值。 In addition, it is sufficient that the setting time of the preset alarm value should be before the estimated value of the tension of the fiber rope is judged. Also, the alarm value is not necessarily a fixed value, but may be based on tide fluctuation, ship loading and unloading status, and weather. The value is updated based on changes in disturbances such as walruses or tidal currents, or the degree of deterioration of mooring lines.

例如,纖維繩存在有因經年劣化等而斷裂之荷重降低的情況。習知是將已於繋泊中使用既定期間的纖維繩之一部分切斷,從船上帶下後帶回至繩製造所等,利用拉伸試驗裝置測定所斷裂的荷重,確認劣化程度,從而決定纖維繩之管理方法。 For example, a fiber rope may be broken due to deterioration over time, etc., and the load may decrease. It is known to cut off a part of the fiber rope that has been used for a predetermined period of time in mooring, take it off the ship and bring it back to the rope manufacturer, etc., measure the broken load with a tensile test device, confirm the degree of deterioration, and determine the management method of the fiber rope.

此處,於上述繋泊索監視系統中,上述控制裝置係以如下方式所構成:根據由上述伸長率檢測裝置所檢測出的上述纖維繩之伸長率之值、及由在上述伸長率檢測裝置之外另行檢測上述纖維繩之張力的張力檢測裝置所檢測出的張力值,判定上述纖維繩之劣化程度,且根據上述劣化程度使上述警報值之值降低,如此可發揮如下效果。 Here, in the mooring rope monitoring system, the control device is configured to determine the degree of deterioration of the fiber rope based on the elongation value of the fiber rope detected by the elongation detection device and the tension value detected by a tension detection device that separately detects the tension of the fiber rope in addition to the elongation detection device, and lowers the value of the alarm value according to the degree of deterioration, thereby achieving the following effects.

纖維繩因經年劣化等,相對於同一荷重的伸長率或相對於同一伸長率的荷重發生變化。即,纖維繩之伸長率之值與張力值(荷重)之關係變化,故從該變化判定纖維繩之劣化程度。而且,根據該劣化程度,纖維繩所斷裂的荷重亦降低,因此,使用於避免繋泊索斷裂的警報值之值降低。藉此,可基於繋泊索之劣化程度更新警報值,提高安全性。 The elongation rate of the fiber rope with respect to the same load or the load with respect to the same elongation rate changes due to aging deterioration or the like. That is, the relationship between the elongation value of the fiber rope and the tension value (load) changes, so the degree of deterioration of the fiber rope is judged from this change. Furthermore, according to the degree of deterioration, the load at which the fiber rope breaks is also reduced, so that the value of the alarm value for avoiding breakage of the mooring rope is lowered. In this way, the alarm value can be updated based on the degree of deterioration of the mooring rope, improving safety.

再者,根據本系統之纖維繩之相對於同一荷重的伸長率之變化,推斷纖維繩之經年變化等,關於該方法,例如考慮以下 兩點。 Furthermore, based on the change in the elongation of the fiber rope of this system with respect to the same load, the yearly change of the fiber rope, etc. are estimated. Regarding this method, for example, consider the following two o'clock.

1)將上述之已使用既定期間的纖維繩之一部分切斷,於已儲存有以拉伸試驗裝置所測定的應力應變線圖之資料之情形時,可與此對照而推斷纖維繩之劣化狀態、斷裂荷重。 1) Cut off a part of the above-mentioned fiber rope that has been used for a predetermined period, and if the data of the stress-strain diagram measured by the tensile test device is stored, the deterioration state and breaking load of the fiber rope can be inferred by comparing with this.

2)於未儲存有上述資料之情形時,根據相對於同一荷重的伸長率之增加或相對於同一伸長率的荷重之減少,推斷因經年劣化等所導致的應力應變線圖之偏移程度,視需要進行外插等,由此可推斷斷裂荷重點。 2) When the above data is not stored, according to the increase of the elongation relative to the same load or the decrease of the load relative to the same elongation, infer the degree of deviation of the stress-strain line diagram caused by the deterioration over the years, etc., and extrapolate if necessary, so as to infer the point of the fracture load.

於上述繋泊索監視系統中,上述控制裝置係以如下方式所構成:於上述劣化程度超過預先被設定的更換時期警告值(閾值)之情形時,則警告上述纖維繩已達到更換時期;如此,根據該警告,可於適當時期更換纖維繩,避免因劣化所導致之纖維繩之斷裂,因此可提高繋泊時之安全性。 In the above-mentioned mooring rope monitoring system, the above-mentioned control device is constituted as follows: when the above-mentioned degree of deterioration exceeds the pre-set replacement period warning value (threshold value), it warns that the above-mentioned fiber rope has reached the replacement period; in this way, according to the warning, the fiber rope can be replaced at an appropriate time to avoid the breakage of the fiber rope caused by deterioration, thereby improving the safety during mooring.

又,進而,於設置有發出提示避免纖維繩斷裂之作業之警告的系統之情形時,根據纖維繩之劣化程度調整在纖維繩之使用中成為施加過大之伸長的使用情況時發出警告的伸長率之警報值(閾值)之設定,或進行該纖維繩之捲取捲出裝置(絞車)之控制及調整,由此可實現更安全之繋泊索之管理。 Furthermore, when a system for issuing a warning to prevent the breakage of the fiber rope is installed, the setting of the alarm value (threshold value) of the elongation that gives a warning when excessive elongation is applied during use of the fiber rope is adjusted according to the degree of deterioration of the fiber rope, or the control and adjustment of the take-up and unwinding device (winch) of the fiber rope can be performed, thereby realizing safer management of the mooring rope.

於上述繋泊索監視系統中,上述伸長率檢測裝置具有檢測上述纖維繩之伸長率的索狀之檢測部,上述纖維繩於內部組入有上述檢測部而所構成,如此可發揮如下效果。 In the above-mentioned mooring rope monitoring system, the elongation detection device has a rope-shaped detection part for detecting the elongation of the fiber rope, and the fiber rope is constituted by incorporating the detection part inside, so that the following effects can be exerted.

由於構成繋泊索的纖維繩本身配設有伸長率檢測裝置之索狀之檢測部,因此,可進行與習知之纖維繩相同之操作,不妨礙繋泊作業時。又,藉由將索狀之檢測部設置於股線之內部、即 芯部或繩之內部,而不易受到外部損傷、磨損,因此,具有檢測部不易劣化而耐久性提高之優點。 Since the fiber rope constituting the mooring rope itself is equipped with the rope-shaped detection part of the elongation detection device, the same operation as the known fiber rope can be performed without hindering the mooring operation. Also, by installing the cable-shaped detection part inside the strand, that is, The inside of the core or the rope is less susceptible to external damage and wear, so the detection part is less likely to deteriorate and the durability is improved.

又,由於可自船舶所具備有之用於繋泊的繋泊索(纖維繩)之檢測部獲得張力資料,因此,無須獲得來自棧橋側(陸地側)的張力資料,可容易地利用船舶側之繋泊索監視系統進行資料處理。進而,藉由將複數個檢測部撚入纖維繩之複數個測定對象部分,可分別檢測該等複數個測定對象部分之伸長率。 In addition, since the tension data can be obtained from the detection part of the mooring rope (fiber rope) that the ship has for mooring, it is not necessary to obtain the tension data from the pier side (land side), and the data processing can be easily performed using the mooring rope monitoring system on the ship side. Furthermore, by twisting the plurality of detection parts into the plurality of measurement target portions of the fiber rope, the elongation percentages of the plurality of measurement target portions can be respectively detected.

於上述繋泊索監視系統中,上述纖維繩係具有檢測部側連接器、檢測部側連接器及保護構件而所構成,該檢測部側連接器被連接至組入至上述纖維繩之股線之內部的上述檢測部或被連接至上述檢測部的測量用配線,且被配置於上述纖維繩之上述股線之外周,該檢測部側連接器可脫離地接合於上述檢測部側連接器,且連接於控制裝置側配線電纜,該保護構件將上述檢測部側連接器及上述控制裝置側連接器一起與上述纖維繩覆蓋,如此可發揮如下效果。 In the above-mentioned mooring line monitoring system, the fiber rope system is constituted by a detector-side connector, a detector-side connector, and a protection member. The detector-side connector is connected to the detector unit incorporated into a strand of the fiber rope or a measurement wiring connected to the detector unit, and is disposed on the outer periphery of the strand of the fiber rope. and the above-mentioned control device side connector are covered with the above-mentioned fiber rope, so that the following effects can be exerted.

根據該構成,檢測部因被配置於股線之中心部而被保護,並且可減少最受到纖維繩之彎曲、伸縮的影響。 According to this structure, since the detection part is arrange|positioned in the center part of a strand, it can be protected, and it can reduce the influence of bending and stretching of a fiber rope most.

又,將以小型連接器所形成的檢測部側連接器與電源側連接器配置於纖維繩之股線之外周,將測量用配線導出至外周部並連接於檢測部側連接器,將電源側連接器可脫離地接合於該檢測部側連接器,因此,可非常簡單地進行纖維繩側之測量用配線與控制裝置側之控制裝置側配線電纜之連接及其解除。 Also, the detector-side connector and the power-side connector formed of small connectors are disposed on the outer periphery of the strands of the fiber rope, the measurement wiring is led out to the outer periphery and connected to the detector-side connector, and the power-side connector is detachably joined to the detector-side connector. Therefore, the connection and release of the measurement wiring on the fiber rope side and the control device-side wiring cable on the control device side can be performed very easily.

進而,可藉由利用保護構件(纖維織物外罩等)覆蓋檢測部側連接器及電源側連接器,而防止運用時連接部分之破損。 又,該保護構件因使用柔軟之素材而於纖維繩收納時體積不會增大,周圍之纖維繩亦不會受損,因此,可將操作性能及纖維繩強度之降低控制在最小限度。 Furthermore, by covering the detection unit side connector and the power supply side connector with a protective member (fabric cover, etc.), it is possible to prevent damage to the connection portion during use. In addition, since the protective member is made of a soft material, the size of the fiber rope will not increase when the fiber rope is stored, and the surrounding fiber rope will not be damaged. Therefore, the decrease in operability and strength of the fiber rope can be minimized.

於上述繋泊索監視系統中,構成為,被組入至上述纖維繩之股線之內部的上述檢測部或連接於上述檢測部的測量用配線被連接至資料處理裝置,上述資料處理裝置將自上述檢測部所傳送的類比信號轉換為數位信號,將上述數位信號利用有線或無線傳送至上述控制裝置,該資料處理裝置被設置於捲取上述纖維繩的繋泊用設備之內部或分開設置,如此可發揮如下效果。 In the above-mentioned mooring rope monitoring system, the above-mentioned detection part incorporated into the strands of the above-mentioned fiber rope or the measurement wiring connected to the above-mentioned detection part is connected to a data processing device, and the above-mentioned data processing device converts the analog signal transmitted from the above-mentioned detection part into a digital signal, and transmits the above-mentioned digital signal to the above-mentioned control device by wire or wirelessly, and the data processing device is installed inside or separately installed in the mooring equipment that winds the above-mentioned fiber rope, so that the following effects can be achieved.

於該等檢測部或測量用配線不經由檢測部側連接器及電源側連接器等之連接器而直接連接於資料處理裝置之情形時,可避免連接器之耐久性或保護該連接器的保護罩之耐久性之問題。進而,可節省繋泊作業時船員用於將連接器彼此連接的時間,例如保護罩之開閉、水密蓋之裝卸、連接器之裝卸等之人工作業。因此,可使該繋泊索監視系統設為無須船員手動操作的全自動系統。 When the detection part or the wiring for measurement is directly connected to the data processing device without passing through the connectors such as the detection part side connector and the power supply side connector, the problem of the durability of the connector or the durability of the protective cover protecting the connector can be avoided. Furthermore, the time spent by the crew on connecting the connectors during mooring operations can be saved, such as manual operations such as opening and closing of the protective cover, loading and unloading of the watertight cover, and loading and unloading of the connectors. Therefore, the mooring rope monitoring system can be set as a fully automatic system without manual operation by the crew.

或者,於上述繋泊索監視系統中,構成為,被組入至上述纖維繩之股線之內部的上述檢測部或連接於上述檢測部的測量用配線被連接至設置在上述纖維繩之內部或表面上的資料處理裝置,上述資料處理裝置將自上述檢測部所傳送的類比信號轉換成數位信號,藉由經由設置於上述纖維繩之內部的有線信號傳送電纜的有線或來自設置於上述纖維繩之內部的無線信號發送器的無線,將上述數位信號經由中繼器或直接傳送至上述控制裝置,該中繼器被設置於捲取上述纖維繩的繋泊用設備之內部或分開設置,如 此可發揮如下效果。 Alternatively, in the above-mentioned mooring rope monitoring system, the detection unit incorporated in the strands of the fiber rope or the measurement wiring connected to the detection unit is connected to a data processing device installed inside or on the surface of the fiber rope, and the data processing device converts the analog signal transmitted from the detection unit into a digital signal, and transmits the digital signal through a wired signal transmission cable installed inside the fiber rope or wirelessly from a wireless signal transmitter installed inside the fiber rope. Repeater or directly sent to the above-mentioned control device, the repeater is set inside the mooring equipment for winding the above-mentioned fiber rope or set separately, such as This can exert the following effects.

藉此,若使用被設置於纖維繩之內部或表面上的小型之資料處理裝置,則可將以僅配置於欲測定之部位的檢測部所測量的類比資料利用短距離之有線傳送轉換成抗干擾之數位信號,因此,可更高精度地檢測纖維繩之伸長率。又,藉由利用無線將數位信號發送至中繼器或控制裝置,而無須設置有線傳送所需的有線傳送路徑,且亦無有線傳送路徑之破損之虞。 In this way, if a small data processing device installed inside or on the surface of the fiber rope is used, the analog data measured by the detection part that is only arranged at the position to be measured can be converted into an anti-interference digital signal by short-distance wired transmission, so the elongation of the fiber rope can be detected with higher accuracy. Also, by wirelessly sending digital signals to a repeater or a control device, it is not necessary to provide a wired transmission path required for wired transmission, and there is no risk of damage to the wired transmission path.

於上述繋泊索監視系統中,構成為,將上述檢測部分別配置於較上述纖維繩之線長方向之中央更靠一端側的前半部及較上述中央更靠另一端側的後半部,並且從配置於上述前半部的上述檢測部與配置於上述後半部的上述檢測部之間引出各上述檢測部或連接於各上述檢測部的測量用配線,如此可發揮如下效果。 In the above-mentioned mooring rope monitoring system, the above-mentioned detection part is arranged in the front half part closer to one end side than the center of the line length direction of the above-mentioned fiber rope, and the rear half part is closer to the other end side than the above-mentioned center, and each of the above-mentioned detection parts or the measurement wiring connected to each of the above-mentioned detection parts is drawn out from between the above-mentioned detection part arranged in the above-mentioned front half part and the above-mentioned detection part arranged in the above-mentioned rear half part, so that the following effects can be exerted.

藉由將具有該檢測部的感測器插入區域分割成繋泊索之前半部分及後半部分的兩部分,並自中央引出檢測部或測量用配線,可進行如下之繋泊索之換新方法,即,最初使用繋泊索之前半部分側,數年後調換繋泊索之前後而使用後半部分側。 By dividing the sensor insertion area having the detection part into two parts, the front half and the rear half of the mooring rope, and leading out the detection part or the wiring for measurement from the center, it is possible to perform a mooring rope renewal method in which the front half of the mooring rope is used initially, and the rear half of the mooring rope is replaced after several years.

而且,用於達成上述目的之本發明之繋泊管理系統具備有上述繋泊索監視系統,上述控制裝置係以如下方式所構成:於使用上述繋泊索之繋泊作業中、計算作業完成時及繋泊中之至少任一情況,以自上述繋泊索監視系統所獲得的各繋泊索之張力成為預先被設定的目標張力之方式對捲取各繋泊索的繋泊用設備進行控制。 Furthermore, the mooring management system of the present invention for achieving the above object is provided with the above-mentioned mooring rope monitoring system, and the above-mentioned control device is configured to control the mooring equipment for winding each mooring rope so that the tension of each mooring rope obtained from the above-mentioned mooring rope monitoring system becomes a preset target tension during at least any one of mooring operations using the mooring ropes, when calculation work is completed, and during mooring.

根據該構成,由於可將自繋泊索監視系統所獲得的各繋泊索之張力用於繋泊索之張力調整,故不僅可避免各繋泊索之斷 裂,亦可藉由調整各繋泊索之張力使繋泊狀態設為更佳之繋泊狀態,而使被繋泊的船舶之船體運動不會變大,針對氣象.海象或船舶之裝卸狀態、或入射至船舶之波浪等之干擾,可時時刻刻地設為更佳之繋泊狀態。 According to this structure, since the tension of each mooring rope obtained from the mooring rope monitoring system can be used for the tension adjustment of the mooring rope, it is possible to avoid breaking of each mooring rope. The mooring state can also be set to a better mooring state by adjusting the tension of each mooring rope, so that the hull motion of the moored ship will not become larger, for weather. The loading and unloading state of the walrus or the ship, or the interference of the waves incident on the ship, etc., can be set to a better mooring state at all times.

又,用於達成上述目的之本發明之繋泊索監視方法係如下之方法,其特徵在於:使用繋泊索繋泊船舶時,利用伸長率檢測裝置測量構成上述繋泊索的纖維繩之伸長率,根據上述伸長率檢測裝置之檢測值算出上述繋泊索之張力。 In addition, the mooring rope monitoring method of the present invention for achieving the above object is the following method, characterized in that: when a ship is moored with a mooring rope, the elongation of the fiber rope constituting the mooring rope is measured by an elongation detection device, and the tension of the mooring rope is calculated based on the detection value of the elongation detection device.

根據該繋泊索監視方法,並非根據施加至繋泊索的荷重算出繋泊索之張力,而是根據預先被設定的伸長率與張力之關係,或者基於當時所剛獲得的伸長率與張力之關係,根據伸長率檢測裝置之檢測值算出繋泊索之張力,因此,於將船舶繋泊於棧橋等之陸地側時,不僅可高精度地算出繋泊作業中、繋泊作業結束時的繋泊索之張力,亦可高精度地算出正在繋泊時的繋泊索之張力。 According to this mooring line monitoring method, the tension of the mooring line is not calculated from the load applied to the mooring line, but the tension of the mooring line is calculated from the detected value of the elongation rate detection device based on the relationship between the elongation rate and the tension that has been set in advance, or based on the relationship between the elongation rate and the tension just obtained at that time. Therefore, when the ship is moored on the land side of a pier, etc., not only the tension of the mooring line during the mooring operation or when the mooring operation is completed can be calculated with high accuracy. Mooring rope tension.

又,用於達成上述目的之本發明之繋泊管理方法係如下之方法,其特徵在於:於使用複數根繋泊索繋泊船舶時,對於各上述繋泊索,根據以被撚入至上述繋泊索且測量構成上述繋泊索的纖維繩之伸長率的伸長率檢測裝置所測量出的檢測值算出上述繋泊索之張力,並且於使用上述繋泊索之繋泊作業中、繋泊作業完成時及繋泊中之至少任一情況,對於各上述繋泊索,以所算出的上述繋泊索之張力成為預先被設定的各目標張力之方式,對捲取各上述繋泊索的繋泊用設備進行控制。 In addition, the mooring management method of the present invention for achieving the above object is the following method, characterized in that, when mooring a ship using a plurality of mooring lines, for each of the mooring lines, the tension of the mooring lines is calculated based on a detection value measured by an elongation detection device that is twisted into the mooring lines and measures the elongation of fiber ropes constituting the mooring lines, and in at least any of the mooring operations using the mooring lines, when mooring operations are completed, and during mooring, for each of the mooring lines The mooring equipment that winds up each of the mooring ropes is controlled so that the calculated tension of the mooring ropes becomes each target tension set in advance.

根據該繋泊管理方法,不僅可避免各繋泊索之斷裂,亦可藉由調整各繋泊索之張力而使繋泊狀態成為更佳之狀態,從而 使被繋泊之船舶之船體運動不會變大,針對氣象.海象或船舶之裝卸狀態、及入射至船舶之波浪等,可時時刻刻地設為更佳之繋泊狀態。 According to this mooring management method, not only can the breakage of each mooring rope be avoided, but also the mooring state can be improved by adjusting the tension of each mooring rope, thereby So that the hull motion of the moored ship will not become larger, aiming at weather. The loading and unloading state of walruses or ships, and the waves incident on the ship can be set to a better mooring state at all times.

根據本發明之繋泊索監視系統、繋泊管理系統、繋泊索監視方法及繋泊管理方法,以相對簡單之構成,即便於使用繋泊索之繋泊作業中、繋泊作業完成時及繋泊中之任一情況,亦可始終檢測繋泊索之張力,從而可預測及避免繋泊索之斷裂。 According to the mooring rope monitoring system, mooring management system, mooring rope monitoring method, and mooring management method of the present invention, with a relatively simple structure, the tension of the mooring rope can be always detected even during the mooring operation using the mooring rope, when the mooring operation is completed, or during mooring, so that the breakage of the mooring rope can be predicted and avoided.

1:船舶 1: ship

1a:甲板上之繋泊用構件 1a: Mooring components on deck

1b:甲板 1b: Deck

2:棧橋 2: Trestle

2a:棧橋側之繋泊用構件 2a: Mooring components on the trestle side

2b:張力計 2b: tensiometer

2c:資料管理裝置 2c: Data management device

3:水面 3: water surface

20:伸長率檢測裝置 20: Elongation detection device

21:檢測部(伸長率感測器) 21: Detection part (elongation sensor)

21a:線圈芯線 21a: coil core wire

21b:線圈繞線 21b: Coil winding

21c:絕緣樹脂覆膜 21c: insulating resin film

21d:電磁波屏蔽層 21d: Electromagnetic wave shielding layer

22:測量用配線 22: Wiring for measurement

23:1次側小型連接器(檢測部側連接器) 23: 1st side small connector (detector side connector)

24:2次側小型連接器(控制裝置側連接器) 24: Secondary side small connector (control device side connector)

25:控制裝置側配線電纜 25: Control device side wiring cable

26:有線信號傳送電纜 26: Wired signal transmission cable

27:資料處理裝置 27: Data processing device

27a:無線信號發送器 27a: Wireless signal transmitter

28:中繼器 28: Repeater

30:繋泊索(纖維繩) 30: mooring rope (fiber rope)

30a:繋泊索之前端之輪 30a: The wheel at the front end of the mooring rope

31:紗線 31: yarn

32a:撚入有檢測部之股線(細繩) 32a: Twisted into the strands (thin rope) with the detection part

32b、32c:無檢測部之股線(細繩) 32b, 32c: strands (strings) without detection part

33:緩衝材 33: buffer material

34:(作為保護構件的)纖維帶外殼 34: (as a protective component) fiber belt shell

40:繋泊索監視系統 40:Mooring rope monitoring system

41:張力檢測裝置(可攜型張力計等) 41: Tension detection device (portable tension meter, etc.)

42:繋泊用設備(繋泊絞車等) 42: Mooring equipment (mooring winch, etc.)

43:控制裝置 43: Control device

43a:監控裝置 43a: Monitoring device

50:繋泊管理系統 50:Mooring management system

51:防舷材 51: Anti-bulk

F:荷重 F: load

Fc:警報荷重 Fc: alarm load

Fd:斷裂荷重 Fd: breaking load

T:繋泊索之張力 T: Tension of the mooring rope

Tc:相當於警報荷重之張力 Tc: Equivalent to the tension of the alarm load

Td:相當於斷裂荷重之張力 Td: Tension equivalent to breaking load

Tm:張力(由伸長率檢測裝置算出之張力) Tm: Tension (the tension calculated by the elongation detection device)

Tmm:張力(荷重)(由張力檢測裝置檢測出之張力(荷重)) Tmm: tension (load) (tension (load) detected by the tension detection device)

Tt:目標張力 Tt: target tension

α:檢測部之股線伸長率(伸長率) α: Strand elongation of the detection part (elongation)

αa:基於尺寸測定之伸長率(股線伸長率) αa: Elongation based on dimensional measurement (strand elongation)

αc、βc:相當於警報荷重之警報值 αc, βc: Equivalent to the alarm value of the alarm load

αd:相當於斷裂荷重之股線伸長率 αd: Strand elongation equivalent to breaking load

αm:所檢測出之股線伸長率(伸長率) αm: The detected strand elongation (elongation)

βd:相當於斷裂荷重之纖維繩之伸長率(伸長率) βd: The elongation (elongation) of the fiber rope equivalent to the breaking load

βm:纖維繩之伸長率(伸長率) βm: elongation of fiber rope (elongation)

γ:伸長率與張力之比 γ: ratio of elongation to tension

δ:劣化程度 δ: degree of deterioration

η:拉伸率 η: elongation

圖1係示意性表示本發明之實施形態之繋泊索監視系統及繋泊管理系統之構成之俯視圖。 Fig. 1 is a plan view schematically showing the configuration of a mooring rope monitoring system and a mooring management system according to an embodiment of the present invention.

圖2係示意性表示船舶之甲板上之繋泊用設備及繋泊用構件、棧橋之繋泊用構件、伸長率之檢測部及張力檢測裝置之配置之圖。 2 is a diagram schematically showing the arrangement of mooring equipment and mooring components on the deck of a ship, mooring components of a jetty, an elongation detection unit, and a tension detection device.

圖3係示意性表示繋泊用設備中之張力檢測裝置之配置及繋泊索中之伸長率之檢測部之配置的圖。 Fig. 3 is a diagram schematically showing the arrangement of the tension detection device in the mooring equipment and the arrangement of the elongation detection part in the mooring rope.

圖4係示意性表示伸長率檢測裝置中之索狀之檢測部之構成之圖。 Fig. 4 is a diagram schematically showing the configuration of a cable-shaped detection unit in the elongation detection device.

圖5係表示根據以伸長率檢測裝置之檢測部所檢測出的電感之變化而算出的伸長率、與根據尺寸測定求出檢測部之延伸的伸長率之關係之一例的圖。 5 is a graph showing an example of the relationship between the elongation calculated from the change in inductance detected by the detection part of the elongation detection device and the elongation obtained by the extension of the detection part from the dimension measurement.

圖6係表示將伸長率檢測裝置之檢測部配置於股線的位置之圖,(a)係於股線之芯部配置有檢測部之圖,(b)係於股線之中層配置有檢測部之圖,(c)係於股線之外層配置有檢測部之圖。 6 is a diagram showing the position of the detection unit of the elongation detection device arranged on the strand, (a) is a diagram in which the detection unit is arranged in the core of the strand, (b) is a diagram in which the detection unit is arranged in the middle layer of the strand, and (c) is a diagram in which the detection unit is arranged in the outer layer of the strand.

圖7係用以說明伸長率檢測裝置之檢測部之長度與纖維繩之長度之關係的圖。 Fig. 7 is a diagram for explaining the relationship between the length of the detection portion of the elongation detection device and the length of the fiber rope.

圖8係表示具備有伸長率檢測裝置之檢測部的纖維繩中之檢測部配線與控制裝置側配線電纜之連接部分及對該連接部分之保護狀態之說明圖。 Fig. 8 is an explanatory view showing a connection portion between the detection portion wiring and the control device side wiring cable in a fiber rope having a detection portion having an elongation detection device, and the protection state of the connection portion.

圖9係表示每測定次數之纖維繩之伸長率(尺寸測定)與股線之伸長率(感測器資料)之關係之圖。 Fig. 9 is a graph showing the relationship between the elongation of the fiber rope (dimension measurement) and the elongation of the strand (sensor data) per number of measurements.

圖10係表示與圖9為相同狀態下之荷重與股線之伸長率(感測器資料)之關係之圖。 Fig. 10 is a graph showing the relationship between the load and the elongation of the strand (sensor data) in the same state as in Fig. 9 .

圖11係表示與圖9及圖10為相同狀態下之荷重與纖維繩之伸長率(尺寸測定)之關係之圖。 Fig. 11 is a graph showing the relationship between the load and the elongation (dimension measurement) of the fiber rope in the same state as Fig. 9 and Fig. 10 .

圖12係表示股線之伸長率(感測器資料)與警報(信號)輸出之關係且表示股線之伸長率(感測器資料)之時間序列之一例之圖。 Fig. 12 is a graph showing an example of the time series of the elongation rate (sensor data) of the strand and the relationship between the elongation rate (sensor data) of the strand and the alarm (signal) output.

圖13係表示股線之伸長率(感測器資料)、斷裂荷重與警報荷重之關係之示意圖。 Fig. 13 is a schematic diagram showing the relationship between the elongation rate of the strand (sensor data), the breaking load and the alarming load.

圖14係示意性表示繋泊用設備中之張力檢測裝置之配置與繋泊索中之伸長率之檢測部之配置之與圖3不同之例的圖。 Fig. 14 is a diagram schematically showing an example different from Fig. 3 in the arrangement of the tension detection device in the mooring equipment and the arrangement of the elongation detection part in the mooring rope.

圖15係示意性表示繋泊用設備中之張力檢測裝置之配置與繋泊索中之伸長率之檢測部之配置之與圖3、圖14不同之例的圖。 Fig. 15 is a diagram schematically showing an example different from Fig. 3 and Fig. 14 in the arrangement of the tension detection device in the mooring equipment and the arrangement of the elongation detection part in the mooring rope.

圖16係表示根據經年變化之劣化程度而變化之纖維繩之伸長率與荷重之關係的示意圖。 Fig. 16 is a schematic diagram showing the relationship between the elongation of the fiber rope and the load according to the degree of deterioration over time.

圖17係表示反映出劣化程度之情形時之股線之伸長率與警報(信號)輸出之關係且表示股線之伸長率之時間序列之一例的圖。 Fig. 17 is a diagram showing an example of the time series of the elongation rate of the strand showing the relationship between the elongation rate of the strand and the alarm (signal) output when the degree of deterioration is reflected.

圖18係表示反映出劣化程度的警報值之調整及用以判定纖維 繩之更換時期的控制流程之一例之圖。 Figure 18 shows the adjustment of the alarm value reflecting the degree of deterioration and used to determine the fiber Diagram showing an example of the control flow during the rope replacement period.

以下,一面參照圖式一面對本發明之實施形態之繋泊索監視系統、繋泊管理系統、繋泊索監視方法及繋泊管理方法進行說明。 Hereinafter, a mooring rope monitoring system, a mooring management system, a mooring rope monitoring method, and a mooring management method according to embodiments of the present invention will be described with reference to the drawings.

再者,作為此處例示之繋泊索之纖維繩,例示「3股繩」進行說明,但亦可為其他構造,例如6股繩、8股繩、12股繩或雙編繩等。 In addition, as the fiber rope of the mooring rope exemplified here, "3-ply rope" is exemplified and described, but other structures, such as 6-ply rope, 8-ply rope, 12-ply rope, or double-braided rope, etc. may also be used.

如圖1~圖3所示,本發明之實施形態之繋泊索監視系統40係對將浮於水面3的船舶1隔著防舷材(fender)51停靠於棧橋2並藉由繋泊索30繋泊之狀態下的繋泊索30之張力T進行監視之系統。 As shown in FIGS. 1 to 3 , the mooring rope monitoring system 40 according to the embodiment of the present invention is a system that monitors the tension T of the mooring rope 30 in the state where the ship 1 floating on the water surface 3 is docked on the trestle 2 through a fender 51 and is moored by the mooring rope 30 .

又,本發明之實施形態之繋泊管理系統50係如下之系統:具備有繋泊索監視系統40而所構成,利用控制裝置43,基於利用繋泊索監視系統40所獲得的各繋泊索30之張力T,控制捲取有繋泊索30的繋泊用設備(繋泊絞車等)42而調整控制各繋泊索30之張力T。再者,較佳為具備有利用無線通信收發資料的監控裝置43a,以便於操作繋泊用設備42時,可觀察與控制裝置43相同的繋泊用資料。又,較佳為於陸地側亦可使用該監控裝置43a而共有繋泊索30之資料。該監控裝置43a有時設為設置於艦橋之控制室等的監控器,又,有時設為使用智慧型手機等的可攜式監控器,又,有時亦使用該等兩者。 In addition, the mooring management system 50 according to the embodiment of the present invention is a system that includes the mooring rope monitoring system 40, and uses the control device 43 to adjust and control the tension T of each mooring rope 30 based on the tension T of each mooring rope 30 obtained by the mooring rope monitoring system 40. Furthermore, it is preferable to have a monitoring device 43 a that transmits and receives data by wireless communication, so that when operating the mooring equipment 42 , the same mooring data as that of the control device 43 can be observed. Moreover, it is preferable to share the data of the mooring rope 30 also on the land side by using the monitoring device 43a. This monitoring device 43a may be set as a monitor installed in a control room or the like of a bridge, or may be set as a portable monitor using a smartphone or the like, or both may be used.

於圖1所示之繋泊狀態及圖2所示之繋泊作業中之狀態下,船舶1與棧橋2之間隔著有防舷材51。又,自被設置於甲板 1b上的8座繋泊用設備42中之6座繋泊用設備42延伸出6條繋泊索30,其方向藉由甲板1b上之繋泊用構件1a而彎曲,將繋泊索30之前端之輪30a嵌於棧橋2側之被稱為「樁柱」等的繋泊用構件2a之周圍而得以固定。於該狀態下,藉由利用繋泊用設備42將繋泊索30捲入,使船舶1靠向棧橋2並壓抵於防舷材51,並且使之成為圖1之繋泊狀態。 In the mooring state shown in FIG. 1 and the mooring operation state shown in FIG. 2 , there is an anti-bulk 51 between the ship 1 and the trestle 2 . Also, since it is installed on the deck Six mooring ropes 30 are extended from six of the eight mooring equipment 42 on the deck 1b, the direction of which is bent by the mooring member 1a on the deck 1b, and the wheel 30a at the front end of the mooring rope 30 is embedded around the mooring member 2a called "pile" on the side of the trestle 2 to be fixed. In this state, by drawing in the mooring rope 30 with the mooring equipment 42, the ship 1 is moved toward the pier 2 and pressed against the slab 51, and the mooring state shown in FIG. 1 is achieved.

又,將檢測構成繋泊索30的纖維繩(以下,將「繋泊索」與「纖維繩」之兩者之參照編號均設為「30」)之伸長率αm的伸長率檢測裝置20之檢測部(伸長率感測器)21撚入至各繋泊索30之測定對象部位。再者,關於該伸長率檢測裝置20,於下述之其他項目中進而詳細地說明。 In addition, the detection part (elongation sensor) 21 of the elongation detection device 20 for detecting the elongation αm of the fiber rope constituting the mooring rope 30 (hereinafter, the reference numbers of both "mooring rope" and "fiber rope" are both referred to as "30") is twisted into the measurement target portion of each mooring rope 30. In addition, this elongation rate detection apparatus 20 is further demonstrated in detail in the following other items.

又,不同於該伸長率檢測裝置20,於繋泊用設備42設置有檢測繋泊索30之張力T的張力檢測裝置(可攜型張力計等)41。再者,於在不估算繋泊索30之劣化程度δ時等不使用以該張力檢測裝置41所檢測出的張力T之情形時,該繋泊索監視系統40未必需要該張力檢測裝置41。 Moreover, unlike this elongation detection device 20 , a tension detection device (portable tension gauge, etc.) 41 for detecting the tension T of the mooring rope 30 is provided in the mooring equipment 42 . Furthermore, when the tension T detected by the tension detection device 41 is not used, such as when the degree of deterioration δ of the mooring rope 30 is not estimated, the mooring rope monitoring system 40 does not necessarily require the tension detection device 41 .

作為該張力檢測裝置41,例如有設置於習知技術之繋泊絞車等之繋泊用設備42的張力計等,但亦可使用設置於棧橋2側之繋泊用構件2a的張力計2b等之習知技術的張力檢測裝置。又,該張力檢測裝置41未必僅為固定型張力計,亦可使用可攜型張力計(市售品等),進而,亦可使用具備有本發明之繋泊索監視系統40中所使用的檢測部21且以可算出張力之方式檢驗之纖維繩30。 As this tension detection device 41, for example, there is a tensiometer installed in the mooring equipment 42 such as a mooring winch of the conventional technology, but a tension detection device of the conventional technology such as the tensiometer 2b installed in the mooring member 2a on the side of the jetty 2 may also be used. In addition, the tension detection device 41 is not necessarily a fixed tension gauge, and a portable tension gauge (commercially available, etc.) may also be used. Furthermore, the fiber rope 30 provided with the detection part 21 used in the mooring rope monitoring system 40 of the present invention and which can be tested in such a manner that the tension can be calculated may also be used.

再者,於使用棧橋2側之張力計2b之資料的情形時, 較佳為利用無線將資料發送至船舶1側之控制裝置43,於該情形時,可構成為於張力計2b與控制裝置43之間利用無線直接收發,但亦可如圖2所示,構成為配合需要無線之中繼而設置進行資料之初次處理的資料管理裝置2c,將經由該資料管理裝置2c進行初次處理後的資料發送至控制裝置43。 Furthermore, when using the data of the tensiometer 2b on the side of the trestle 2, It is preferable to use wireless to send data to the control device 43 on the side of the ship 1. In this case, it can be configured to use wireless direct transmission and reception between the tensiometer 2b and the control device 43, but it can also be configured as shown in FIG.

作為該船舶1之甲板上之繋泊用構件1a,有「繋纜樁」、「繋泊孔」、「導索器」、「繋索扣」等。「繋纜樁」係用於繋住位於甲板上之繩的圓柱狀之柱,多數情況下以2根1組之形式被使用。「繋泊孔」係於甲板之端具有使繩穿過之圓形孔的金屬件,用以防止形成繋泊索30的繩直接碰到甲板之角而產生磨損,並且使繩不會隨意地在甲板上繞圈。「導索器」具有與「繋泊孔」相同之功能,根據繩之活動而旋轉,防止磨損,且於下方或於上下具備有滾輪。「繋索扣」與「繋泊孔」大致相同,但未穿過孔,用以自上方放置繩者,使用並非為孔而上部被打開的構造。 As the member 1a for mooring on the deck of the ship 1, there are "bitts", "mooring holes", "leaders", "mooring hooks" and the like. "Bollts" are cylindrical posts used to tie the ropes on the deck, and are often used in sets of 2. "Mooring hole" is a metal piece with a circular hole where the rope passes through at the end of the deck to prevent the rope forming the mooring rope 30 from directly touching the corner of the deck and causing wear and tear, and the rope will not circle around the deck arbitrarily. The "leader" has the same function as the "mooring hole", which rotates according to the movement of the rope to prevent wear and tear, and has rollers below or up and down. The "lanyard buckle" is roughly the same as the "mooring hole", but if the hole is not passed through, and the rope is placed from above, a structure in which the upper part is not opened for the hole is used.

又,棧橋2側之繋泊用構件2a係被稱為「樁柱」或「繋泊樁柱」的鋼鐵製之大型突起物。於船之繋泊時,如圖2及圖3所示,將繋泊索30之前端之輪(孔)30a掛上至該繋泊用構件2a。為使該前端之輪30a不輕易脫離,多數情況下使繋泊用構件2a之上部朝陸側彎曲。 Moreover, the member 2a for mooring on the side of the jetty 2 is a large-scale protrusion made of steel called a "pile" or a "mooring pile". When the ship is moored, as shown in Fig. 2 and Fig. 3, the wheel (hole) 30a at the front end of the mooring rope 30 is hung on the mooring member 2a. In many cases, the upper part of the mooring member 2a is bent toward the land side so that the wheel 30a at the front end is not easily detached.

又,繋船樁係在海上泊位等之港灣內之水域中打入樁等而製成的繋留設施,且為向遠離陸地的海底所打入並被固定之構件。該柱樁之上部露出於水面上,可拴掛繋泊索。 In addition, the bollards are mooring facilities formed by driving piles or the like into the waters in harbors such as offshore berths, and are members that are driven into the seabed away from land and fixed. The upper part of the pile is exposed on the water surface and can be tied with a mooring rope.

其次,對在繋泊監視系統10中所使用的伸長率檢測裝置20進行說明。該伸長率檢測裝置20具有檢測纖維繩30之伸 長率βm的索狀之檢測部21。如圖4所示,該檢測部21係具有線圈芯線21a、線圈繞線21b、絕緣樹脂覆膜21c、電磁波屏蔽層21d、及視需要於電磁波屏蔽層之外表面具有絕緣樹脂被覆(圖4中未記載)而所構成。 Next, the elongation detection device 20 used in the mooring monitoring system 10 will be described. The elongation detection device 20 has the function of detecting the extension of the fiber rope 30 Cord-shaped detection part 21 with length βm. As shown in FIG. 4, the detection unit 21 is composed of a coil core wire 21a, a coil winding wire 21b, an insulating resin coating 21c, an electromagnetic wave shielding layer 21d, and an insulating resin coating (not shown in FIG. 4 ) on the outer surface of the electromagnetic wave shielding layer if necessary.

該線圈芯線21a係以芳香族聚醯胺纖維等所形成的芯線補強纖維,其長度A之範圍之周圍捲繞有線圈繞線21b。又,該線圈繞線21b係金屬導體線,被絕緣樹脂覆膜21c所包圍。進而,絕緣樹脂覆膜21c被金屬線編織構造之電磁波屏蔽層21d所包圍。 The coil core wire 21a is a core wire reinforcing fiber formed of aramid fiber or the like, and the coil wire 21b is wound around the range of the length A. Moreover, this coil wire 21b is a metal conductor wire, and is surrounded by the insulating resin coating 21c. Furthermore, the insulating resin coating 21c is surrounded by the electromagnetic wave shielding layer 21d of the braided metal wire structure.

若張力T(荷重F)作用於該檢測部21,則線圈芯線21a與線圈繞線21b延伸,線圈繞線21b之電感L發生變化。且於線圈繞線21b中所流通的電流之變化檢測該電感L之變化,並且,自預先所測定的電感L與檢測部21之伸長率α的關係,可自所被檢測出的電感Lm獲得檢測部21之伸長率αm。 When the tension T (load F) acts on the detection part 21, the coil core wire 21a and the coil wire 21b extend, and the inductance L of the coil wire 21b changes. And the change of the current flowing in the coil winding 21b detects the change of the inductance L, and from the relationship between the inductance L and the elongation α of the detection part 21 measured in advance, the elongation αm of the detection part 21 can be obtained from the detected inductance Lm.

此處,若將線圈芯線21a之磁導率設為μ,將線圈芯線21a之截面面積設為S(=2×π×D×D/4),將線圈繞線21b之圈數設為N,將線圈長度設為A,則L=(μ×N×N×S/A),故確定電感L與線圈長度A之關係。而且,如圖4及圖8所示,將1條線圈繞線21b呈線圈狀捲繞於線圈芯線21a而形成索狀之檢測部21,將2條該索狀之檢測部21平行地排列,在一側之端將自2條索狀之檢測部21所引出的線圈繞線21b相互電性連接。又,於另一側之端引出被連接於2條索狀之檢測部21之線圈繞線21b的測量用配線22,並經由1次側小型連接器(測量部側連接器)23及2次側小型連接器(控制裝置側連接器)24而以控制裝置側配線電纜25連接於測量器(未圖示)。 Here, if the magnetic permeability of the coil core wire 21a is set to μ, the cross-sectional area of the coil core wire 21a is set to S (=2×π×D×D/4), the number of turns of the coil winding 21b is set to N, and the coil length is set to A, then L=(μ×N×N×S/A), so the relationship between the inductance L and the coil length A is determined. And, as shown in Fig. 4 and Fig. 8, one coil winding wire 21b is coiled around the coil core wire 21a to form a cable-shaped detecting portion 21, two of the cable-shaped detecting portions 21 are arranged in parallel, and the coil winding wires 21b drawn from the two cable-shaped detecting portions 21 are electrically connected to each other at one end. Also, the measurement wiring 22 connected to the coil winding wire 21b of the two rope-shaped detection parts 21 is drawn out from the other end, and is connected to a measuring instrument (not shown) with a control device side wiring cable 25 via a primary side small connector (measurement part side connector) 23 and a secondary side small connector (control device side connector) 24.

圖5中圖示有根據所被檢測出的電感Lm所估算出的伸長率αm與藉由尺寸測定所得的伸長率αa之關係之一例。由此可知,根據電感Lm所估算出的伸長率αm與尺寸測定之伸長率αa存在大致之線性關係(比例關係),藉由在根據該檢測部21中之電感Lm估算伸長率αm而獲得的測定結果中,檢測部21之伸長率αm與尺寸測定之伸長率αa存在有非常地良好之相關關係。以下,將根據電感Lm所算出的伸長率αm作為檢測部21之伸長率(股線伸長率)αm繼續進行如下說明。 FIG. 5 shows an example of the relationship between the elongation αm estimated from the detected inductance Lm and the elongation αa obtained by dimension measurement. It can be seen that the elongation αm estimated based on the inductance Lm and the elongation αa measured by the size have a substantially linear relationship (proportional relationship), and in the measurement results obtained by estimating the elongation αm based on the inductance Lm in the detection unit 21, the elongation αm of the detection unit 21 has a very good correlation with the elongation αa measured by the size. Hereinafter, the elongation αm calculated from the inductance Lm is used as the elongation (strand elongation) αm of the detection unit 21, and the following description will be continued.

而且,如圖6之(a)所示,伸長率檢測裝置20係將檢測部21與扭絞細線(原紗)而所製成的紗線(撚紗)31一起撚入而形成股線(細繩)32a。將設置有該檢測部21的股線32a與其他股線32b、32c一起撚入而構成纖維繩30。即,該伸長率檢測裝置20具有索狀之檢測部21,纖維繩30係將在芯部設置有檢測部21的股線32a與其他股線32b、32c一起撚入而所構成。 And, as shown in FIG. 6(a), the elongation detection device 20 twists the detection part 21 together with the yarn (twisted yarn) 31 made by twisting the thin yarn (original yarn) to form a strand (string) 32a. The strand 32a provided with this detection part 21 is twisted together with other strands 32b and 32c, and the fiber rope 30 is comprised. That is, the elongation detection device 20 has a rope-shaped detection part 21, and the fiber rope 30 is constituted by twisting the strand 32a provided with the detection part 21 at the core together with other strands 32b and 32c.

相較於將該檢測部21如圖6之(b)所示般設置於股線32a之中層,或如圖6之(c)所示般設置於股線32a之外層,較佳為如圖6之(a)所示般設置於芯部。若設為該構成,則檢測部21與股線32a之延伸量大致相同。而且,於股線32a與其他股線32b、32c一起被撚入而構成纖維繩30的情形時,與纖維繩30之延伸量相比,所被撚入的股線32a之芯部之延伸量小於股線32a之外層或中層之延伸量。因此,存在有被配置於芯部的檢測部21之耐久性變得更高的優點。 Compared with the detection part 21 being arranged in the middle layer of the strand 32a as shown in (b) of FIG. 6 , or being arranged in the outer layer of the strand 32a as shown in FIG. 6 (c), it is preferably arranged in the core as shown in (a) of FIG. 6 . According to this structure, the stretching amount of the detection part 21 and the strand 32a is substantially the same. And when the strand 32a is twisted together with other strands 32b, 32c to form the fiber rope 30, compared with the stretch of the fiber rope 30, the stretch of the core of the twisted strand 32a is smaller than the stretch of the outer layer or middle layer of the strand 32a. Therefore, there is an advantage that the durability of the detection unit 21 arranged in the core becomes higher.

又,如圖7所示,被撚入的股線32a之長度(沿著圖7之一點鏈線之長度)As較纖維繩30之直線長度Ar為長。因此,在 藉由伸長率檢測裝置20所執行之測定中對股線32a之伸長率α進行測定,故無法直接測定纖維繩30之伸長率β。但是,可藉由事先對兩者之伸長率α、β進行測定等,自藉由伸長率檢測裝置20所獲得之股線32a之芯部之纖維之伸長率之測定值(=檢測部21之伸長率)αm算出纖維繩30之伸長率βm。 Also, as shown in FIG. 7, the length As of the twisted strand 32a (the length along the dot chain line in FIG. 7) is longer than the linear length Ar of the fiber rope 30. Thus, in In the measurement performed by the elongation detection device 20, the elongation α of the strand 32a is measured, so the elongation β of the fiber rope 30 cannot be directly measured. However, the elongation βm of the fiber rope 30 can be calculated from the measured value (=the elongation of the detection part 21) αm of the elongation of the fiber in the core of the strand 32a obtained by the elongation detection device 20 by measuring the elongation α and β of both in advance.

檢測部21視需要亦存在有以超過100米之長度被使用之情形。又,檢測部除了檢測電感值以外,亦可視需要檢測線圈繞線21b、電磁波屏蔽層21d之電阻值(直流電阻或交流電阻),或者線圈繞線21b與電磁波屏蔽層21d間之電容值等。 The detection part 21 may be used with the length exceeding 100 meters as needed. Also, in addition to detecting the inductance value, the detection unit can also detect the resistance value (DC resistance or AC resistance) of the coil winding 21b and the electromagnetic wave shielding layer 21d, or the capacitance value between the coil winding 21b and the electromagnetic wave shielding layer 21d, etc. as required.

而且,如圖8所示,作為自被撚入至纖維繩30之股線32a的檢測部21的控制裝置側配線電纜25之導出部分,具有測量用配線22、1次側小型連接器(檢測部側連接器)23、2次側小型連接器(控制裝置側連接器)24、控制裝置側配線電纜25、緩衝材33、纖維帶外殼34、位置固定用扣繩(未圖示)等,為了可在船上容易地進行連接作業,而以如下方式所構成。 And, as shown in FIG. 8, as the lead-out part of the control device side wiring cable 25 from the detection part 21 twisted into the strand 32a of the fiber rope 30, there are measurement wiring 22, a primary side small connector (detection part side connector) 23, a secondary side small connector (control device side connector) 24, a control device side distribution cable 25, a buffer material 33, a fiber tape case 34, and a position fixing buckle cord (not shown). And constituted as follows.

測量用配線22連接於被撚入至纖維繩30之股線32a的檢測部21之線圈繞線21b且被構成纖維繩30之股線32a、32b、32c的纖維所包圍而被保護。而且,由於被配線於纖維繩30之股線之中心部,故可減少最受到纖維繩30之彎曲、伸縮的影響。 The measurement wiring 22 is connected to the coil wire 21b of the detection part 21 twisted into the strand 32a of the fiber rope 30, and is surrounded and protected by fibers constituting the strands 32a, 32b, and 32c of the fiber rope 30. Furthermore, since it is wired at the central portion of the strands of the fiber rope 30, it is possible to reduce the influence of bending and stretching of the fiber rope 30 most.

測量用配線22被連接於1次側小型連接器23。又,控制裝置側配線電纜25連接於2次側小型連接器24。而且,2次側小型連接器24可脫離地接合於該1次側小型連接器23。1次側小型連接器23與2次側小型連接器24之兩者均配置於纖維繩30之股線32a、32b、32c之外周。藉此,可非常簡單地進行纖維繩30 側之檢測部21與控制裝置之連接及其解除。再者,圖8中圖示有測量用配線22,但該測量用配線22僅為檢測側連接器附近之短距離(露出於股線之外側的部分)。 The measurement wiring 22 is connected to the primary side small connector 23 . Moreover, the control device side distribution cable 25 is connected to the secondary side small connector 24 . And, the secondary side small connector 24 is detachably joined to the primary side small connector 23. Both the primary side small connector 23 and the secondary side small connector 24 are arranged on the outer circumference of the strands 32a, 32b, 32c of the fiber rope 30. Thereby, can carry out fiber rope 30 very simply The detection part 21 on the side is connected to the control device and its release. In addition, although the wiring 22 for a measurement is shown in FIG. 8, this wiring 22 for a measurement is only a short distance near the detection side connector (the part exposed to the outer side of a strand).

又,1次側小型連接器23與2次側小型連接器24均位於纖維繩30之外周,進而,利用纖維帶外殼34包圍自檢測部21存在有1次側小型連接器23與2次側小型連接器24的部分,從而可自外部視認檢測部21、或1次側小型連接器23與2次側小型連接器24的位置。 In addition, both the primary side small connector 23 and the secondary side small connector 24 are located on the outer periphery of the fiber rope 30, and the portion where the primary side small connector 23 and the secondary side small connector 24 exist from the detection part 21 is surrounded by the fiber ribbon case 34, so that the positions of the detection part 21, or the primary side small connector 23 and the secondary side small connector 24 can be visually recognized from the outside.

藉此,例如,利用厚度為4mm左右之纖維帶外殼34進行覆蓋,故可對1次側小型連接器23與2次側小型連接器24的連接部分賦予壓迫抵抗性,從而充分地保護該連接部分。 Thus, for example, by covering with the fiber tape case 34 having a thickness of about 4mm, the connecting portion of the primary side small connector 23 and the secondary small connector 24 can be provided with compression resistance, thereby sufficiently protecting the connection portion.

於上述圖8所示之構成中,使用1次側小型連接器23與2次側小型連接器24,但亦可為如圖14所示之不使用中間連接器的構成。該構成係以如下方式所構成,即,被組入至纖維繩30之股線32a之內部的檢測部21視需要經由測量用配線22連接至被設置在捲取纖維繩30的繋泊用設備42的資料處理裝置27,資料處理裝置27將自檢測部21所傳送的類比信號轉換為數位信號,將該數位信號利用有線或無線傳送至控制裝置43。 In the configuration shown in FIG. 8 above, the primary side small connector 23 and the secondary side small connector 24 are used, but a configuration without an intermediate connector as shown in FIG. 14 is also possible. This configuration is constituted in such a way that the detection part 21 incorporated into the strand 32a of the fiber rope 30 is connected to the data processing device 27 provided on the mooring equipment 42 for winding the fiber rope 30 through the measurement wiring 22 as necessary, and the data processing device 27 converts the analog signal transmitted from the detection part 21 into a digital signal, and transmits the digital signal to the control device 43 by wire or wirelessly.

於該構成中,於檢測部21視需要不經由1次側小型連接器23與2次側小型連接器24而經由測量用配線22直接連接至資料處理裝置27之情形時,可避免連接器23、24之耐久性、保護連接器23、24之纖維帶外殼(保護構件)34之耐久性的問題。進而,可節省繋泊作業時船員將連接器23、24進行連接之時間,例如纖維帶外殼34之開閉、耐水蓋之裝卸、連接器23、24之裝卸等。又, 即便於檢測部21視需要經由測量用配線22且經由連接器23、24時,若連接至被設置在繋泊用設備42的資料處理裝置27,則繋泊作業時無須裝卸連接器23、24,故可節省船員用於將連接器23、24彼此連接的時間。藉此,可使該繋泊索監視系統40成為無須船員手動操作的全自動系統。 In this configuration, when the detection unit 21 is directly connected to the data processing device 27 via the measurement wiring 22 without passing through the primary side small connector 23 and the secondary side small connector 24 as necessary, the problems of the durability of the connectors 23, 24 and the durability of the fiber tape case (protective member) 34 that protects the connectors 23, 24 can be avoided. Furthermore, it can save the crew's time for connecting the connectors 23, 24 during mooring operations, such as opening and closing the fiber tape shell 34, loading and unloading the water-resistant cover, and loading and unloading the connectors 23, 24, etc. again, Even if the detection part 21 is connected to the data processing device 27 provided on the mooring equipment 42 via the measurement wiring 22 and via the connectors 23 and 24 as needed, the connectors 23 and 24 do not need to be loaded and unloaded during mooring operations, so the time for the crew to connect the connectors 23 and 24 to each other can be saved. Thereby, the mooring line monitoring system 40 can be made into a fully automatic system without manual operation by the crew.

又,作為無須該人工操作的全自動系統,較佳為以成為如下之張力連續測量系統之方式所構成,即,將檢測部21撚入至纖維繩30,並且於繋泊用設備42設置視需要經由測量用配線22連接檢測部21的資料處理裝置27,不僅如此,於繋泊作業時,開始繋泊作業之同時,控制裝置43自動地開始進行資料測量,並自動地解析該測量資料,算出各繋泊索30之張力,並即時地顯示該所算出的張力。該資料處理裝置27較佳為小型化至筆記型電腦大小,以搭載於繋泊用設備42之形式進行組裝。 In addition, as a fully automatic system that does not require such manual operation, it is preferably constituted as a continuous tension measurement system as follows, that is, the detection part 21 is twisted into the fiber rope 30, and the mooring equipment 42 is provided with a data processing device 27 connected to the detection part 21 through the measurement wiring 22 if necessary. Furthermore, during the mooring operation, when the mooring operation is started, the control device 43 automatically starts data measurement, and automatically analyzes the measurement data, calculates the tension of each mooring rope 30, and immediately to display the calculated tension. The data processing device 27 is preferably miniaturized to the size of a notebook computer, and assembled in a form mounted on the mooring equipment 42 .

或者,如圖15所示,於該繋泊索監視系統40中,被組入至纖維繩30之股線32a之內部的檢測部21視需要經由測量用配線22連接至被設置在纖維繩30之內部或表面上的資料處理裝置27。 Alternatively, as shown in FIG. 15 , in the mooring rope monitoring system 40, the detection unit 21 incorporated into the strand 32a of the fiber rope 30 is connected to the data processing device 27 installed inside or on the surface of the fiber rope 30 through the measurement wiring 22 as necessary.

該資料處理裝置27將自檢測部21被傳送的類比信號轉換成數位信號。該數位信號利用有線或無線被傳送至控制裝置43。於利用有線傳送之情形時,經由被設置於纖維繩30之內部的有線信號傳送電纜26進行傳送,於利用無線傳送之情形時,藉由自被設置於纖維繩30之內部或表面上的無線信號發送器27a之無線進行傳送。再者,無線信號發送器27a較佳為預先組入至資料處理裝置27。又,該數位信號經由被設置在捲取纖維繩30的繋泊用 設備42之內部或與該內部分開的中繼器28,或者直接傳送至控制裝置43。 The data processing device 27 converts the analog signal transmitted from the detection unit 21 into a digital signal. This digital signal is transmitted to the control device 43 by wire or wirelessly. In the case of wired transmission, the transmission is performed through the wired signal transmission cable 26 provided inside the fiber rope 30, and in the case of wireless transmission, the transmission is performed wirelessly from the wireless signal transmitter 27a provided inside or on the surface of the fiber rope 30. Furthermore, the wireless signal transmitter 27a is preferably pre-assembled into the data processing device 27 . In addition, the digital signal passes through the mooring device installed on the take-up fiber rope 30 The interior of the device 42 or the repeater 28 separate from the interior, or directly to the control device 43 .

藉此,可使用如被設置於纖維繩30之內部或表面上般的小型之資料處理裝置27,將利用僅配置於欲測定之部位的檢測部21所測量出的類比資料利用短距離之有線傳送轉換成抗干擾之數位信號,故可更高精度地檢測纖維繩30之伸長率βm。又,藉由利用無線將數位信號發送至中繼器28或控制裝置43,而無須設置有線傳送所需之有線傳送路徑,且亦無有線傳送路徑破損之虞。 Thereby, a small data processing device 27 as installed inside or on the surface of the fiber rope 30 can be used to convert the analog data measured by the detection unit 21 that is only arranged at the position to be measured into an anti-interference digital signal through short-distance wired transmission, so that the elongation βm of the fiber rope 30 can be detected with higher accuracy. Also, by wirelessly transmitting the digital signal to the repeater 28 or the control device 43, there is no need to install a wired transmission path required for wired transmission, and there is no risk of damage to the wired transmission path.

進而,將檢測部21分別配置於纖維繩30之較線長方向之中央更靠一端側之前半部及較上述中央更靠另一端側之後半部。而且,構成為自被配置於前半部的檢測部21與被配置於後半部的檢測部21之間引出各檢測部21或連接於各檢測部21的測量用配線22。藉此,由於可將自纖維繩30之檢測部21或測量用配線22之引出部分配置於纖維繩30之大致中央,故可進行如下之繋泊索之更換方法,即,最初使用繋泊索(纖維繩)30之前半部分側,數年後調換繋泊索30之前後而使用後半部分側。 Furthermore, the detection part 21 is respectively arrange|positioned in the front half part of the fiber rope 30 which is closer to one end side than the center in the line length direction, and the rear half part which is closer to the other end side than the said center. Furthermore, each detection part 21 or the measurement wiring 22 connected to each detection part 21 is drawn out from between the detection part 21 arrange|positioned in the front half and the detection part 21 arrange|positioned in the rear half. Thereby, since the detection part 21 or the lead-out part from the fiber rope 30 or the wiring for measurement 22 can be arranged in the approximate center of the fiber rope 30, it is possible to perform a mooring rope replacement method in which the front half side of the mooring rope (fiber rope) 30 is used at first, and the rear half side of the mooring rope 30 is replaced after several years.

其次,使用該纖維繩30,對自尺寸測定所獲得的纖維繩之伸長率βm或荷重F與自檢測部21所獲得的感測器資料即股線伸長率αm的關係進行說明。於圖9~圖11所示之例中,將荷重F之大小於第1次及第2次中在對繩斷裂荷重之負荷率設為15%負荷,於第3次及第4次中設為30%負荷,於第5次及第6次中設為45%負荷,於第7次及第8次中設為60%負荷,於第9次中增加荷重F直至斷裂為止。 Next, using this fiber rope 30 , the relationship between the elongation βm or the load F of the fiber rope obtained from the dimension measurement and the strand elongation αm obtained from the sensor data from the detection unit 21 will be described. In the examples shown in Figures 9 to 11, the load F is set to 15% of the load rate of the rope breaking load in the first and second times, 30% in the third and fourth times, 45% in the fifth and sixth times, 60% in the seventh and eighth times, and increase the load F in the ninth time until it breaks.

圖9中示出纖維繩之伸長率(尺寸測定)βa與股線伸長 率(感測器資料)αm之關係之一例。又,圖10中示出該圖9時之荷重F與股線伸長率αm之關係。進而,圖11中示出該等圖9及圖10時之荷重F與纖維繩之伸長率βa之關係。 Figure 9 shows the elongation (dimension measurement) βa and strand elongation of the fiber rope An example of the relationship between rate (sensor data) αm. In addition, FIG. 10 shows the relationship between the load F and the strand elongation αm at the time of FIG. 9 . Furthermore, Fig. 11 shows the relationship between the load F and the elongation βa of the fiber rope in Figs. 9 and 10 .

於該圖9~圖11中,於纖維繩之伸長率βa或荷重F較小之期間,纖維繩之緊度發生變化,故依賴於最大荷重之歷程,曲線發生變化。因此,於荷重F較小之期間,由於基於股線伸長率αm監視纖維繩之伸長率βa或荷重F,故需要荷重F之歷程資料。但是,若荷重F變大,股線伸長率αm為約1.05以上,則可知股線伸長率αm與纖維繩之伸長率βa或荷重F的關係處於大致一條直線上,故作為用以判定是否超出至斷裂張力前之警報發生用或信號輸出用之警報值的推斷值,可充分地使用股線伸長率αm。 In these Figures 9 to 11, the tightness of the fiber rope changes while the elongation βa of the fiber rope or the load F is small, so the curve changes depending on the history of the maximum load. Therefore, in order to monitor the elongation βa of the fiber rope or the load F based on the strand elongation αm while the load F is small, the history data of the load F is required. However, if the load F becomes larger and the strand elongation αm is about 1.05 or more, it can be seen that the relationship between the strand elongation αm and the elongation βa of the fiber rope or the load F is approximately on a straight line, so the strand elongation αm can be fully used as an estimated value for the alarm generation or signal output for judging whether it exceeds the breaking tension.

又,雖未特別圖示,但亦對將荷重F之大小於第1次至第4次設為30%負荷,於繩緩和處理後之第5次設為30%負荷之情形進行了實驗。於該實驗中,第1次至第2次後之曲線受到繩之緊度的影響,但存在有若繩之緊度穩定則安定於固定之曲線的傾向。又,若於第4次後刻意地放鬆繩,則曲線亦發生變化,而觀察到遲滯。再者,纖維繩之伸長率(尺寸測定)βa與股線伸長率(感測器資料)αm並未排列於一條直線上,但該部分之現象相當於「構造延伸」(撚緊)。 Also, although not shown in particular, experiments were also carried out in which the magnitude of the load F was set to 30% for the first to fourth times, and 30% for the fifth time after the rope relaxation treatment. In this experiment, the curves from the first time to the second time are affected by the tightness of the rope, but there is a tendency to settle down to a fixed curve when the tightness of the rope is stable. Also, if the rope was deliberately loosened after the fourth time, the curve also changed, and hysteresis was observed. Furthermore, the elongation rate (measurement of size) βa of the fiber rope and the elongation rate (sensor data) αm of the strands are not arranged in a straight line, but the phenomenon of this part is equivalent to "structural extension" (tightening).

其次,關於繋泊索監視系統40中之繋泊索30之監視與警報或信號之輸出進行說明。於繋泊索監視系統40中,使用撚入有上述索狀之檢測部21的纖維繩作為繋泊索30。藉此,繋泊索監視系統40係具備有伸長率檢測裝置20而所構成,該伸長率檢測裝置20係於使用繋泊索30將船舶1繋泊於棧橋2等時檢測構成繋 泊索30的纖維繩之伸長率βm。 Next, the monitoring of the mooring rope 30 in the mooring rope monitoring system 40 and the output of an alarm or a signal will be described. In the mooring rope monitoring system 40, the fiber rope which twisted the said rope-shaped detection part 21 is used as the mooring rope 30. Thus, the mooring rope monitoring system 40 is configured by including the elongation detection device 20 for detecting the elongation of the constituent system when the ship 1 is moored to the pier 2 or the like using the mooring rope 30 . The elongation βm of the fiber rope of the poise 30.

並且,進而具備有控制裝置43而所構成,該控制裝置43係根據該伸長率檢測裝置20之檢測值βm算出繋泊索30之張力Tm。再者,亦可並非根據股線伸長率αm算出纖維繩之伸長率βm,而根據股線伸長率αm直接算出繋泊索30之張力Tm。又,於以下之說明中,作為伸長率檢測裝置20之檢測值,使用股線伸長率αm進行說明,但亦可代替股線伸長率αm,而使用根據該股線伸長率αm所算出的纖維繩之伸長率βm。 And, it is further provided with a control device 43 that calculates the tension Tm of the mooring rope 30 based on the detection value βm of the elongation detection device 20 . Furthermore, instead of calculating the elongation βm of the fiber rope from the strand elongation αm, the tension Tm of the mooring rope 30 may be directly calculated from the strand elongation αm. In the following description, the strand elongation αm is used as the detection value of the elongation detection device 20, but instead of the strand elongation αm, the elongation βm of the fiber rope calculated from the strand elongation αm may be used.

根據該構成,並非根據施加至纖維繩30的荷重F算出張力Tm,而是根據預先被設定的股線伸長率αm與張力Tm之關係,例如,將如圖10所示之在事先之試驗所獲得的股線伸長率αm與張力Tm之關係利用地圖資料M1等資料庫化並預先記憶,參照該地圖資料M1,根據繋泊作業中所獲得的股線伸長率αm而算出張力Tm。藉此,可不使用張力檢測裝置41(或2b)而算出張力Tm。 According to this configuration, the tension Tm is calculated not from the load F applied to the fiber rope 30, but from the relationship between the strand elongation αm and the tension Tm set in advance. For example, the relationship between the strand elongation αm and the tension Tm obtained in a previous test as shown in FIG. Thereby, the tension Tm can be calculated without using the tension detection device 41 (or 2b).

或者,基於當時所剛獲得的股線伸長率αm與張力Tm之關係,根據伸長率檢測裝置20之檢測值αm)算出繋泊索30之張力Tm。於此情形時,例如,利用在繋泊作業中由伸長率檢測裝置20所獲得的股線伸長率αm、及以張力檢測裝置43(或張力計2b)所獲得的張力Tm,製成新的地圖資料M2,或者將地圖資料M1修正、更新,於事先(於算出張力Tm之前為止)製成最新之地圖資料Mnew。 Alternatively, the tension Tm of the mooring rope 30 can be calculated from the detected value αm) of the elongation detection device 20 based on the relationship between the strand elongation αm and the tension Tm just obtained at that time. In this case, for example, use the strand elongation αm obtained by the elongation detection device 20 and the tension Tm obtained by the tension detection device 43 (or tensiometer 2b) during the mooring operation to create new map data M2, or correct and update the map data M1, and create the latest map data Mnew in advance (before the tension Tm is calculated).

然後,參照該地圖資料Mnew,根據在繋泊作業中所獲得的股線伸長率αm算出繋泊索30之張力Tm。於此情形時,雖使用張力檢測裝置41(或張力計2b),但無須在事先之試驗獲得股線 伸長率αm與張力Tm之關係並利用地圖資料M1等進行資料庫化並記憶。 Then, referring to the map data Mnew, the tension Tm of the mooring rope 30 is calculated from the strand elongation αm obtained during the mooring operation. In this case, although the tension detection device 41 (or tensiometer 2b) is used, it is not necessary to obtain strands in prior tests. The relationship between elongation αm and tension Tm is stored in a database using map data M1 and the like.

根據以上內容,由於根據伸長率檢測裝置20之檢測值即股線伸長率αm算出繋泊索30之張力Tm,故而不僅可更高精度地算出繋泊作業中、繋泊作業結束時的繋泊索30之張力Tm,亦可更高精度地算出正在繋泊時的繋泊索30之張力Tm。又,於該伸長率檢測裝置20中,由於可對纖維繩30中之存在有伸長率檢測裝置20之檢測部21的測定對象部分之股線伸長率αm進行檢測,故可更高精度地算出該測定對象部分之張力Tm。 Based on the above, since the tension Tm of the mooring rope 30 is calculated based on the detection value of the elongation detection device 20, that is, the strand elongation αm, not only the tension Tm of the mooring rope 30 during the mooring operation and at the end of the mooring operation can be calculated with higher accuracy, but also the tension Tm of the mooring rope 30 during mooring can be calculated with higher accuracy. In addition, in this elongation detection device 20, since the strand elongation αm of the measurement target portion where the detection portion 21 of the elongation detection device 20 exists in the fiber rope 30 can be detected, the tension Tm of the measurement target portion can be calculated with higher accuracy.

又,該控制裝置43係以如下方式所構成:於伸長率檢測裝置20之檢測值αm或根據與該檢測值αm所算出的繋泊索30之張力相關的計算值βm、Tm超過預先被設定的警報值αc、βc、Tc之情形時,進行輸出警報或輸出信號之任一操作。作為該伸長率檢測裝置20之檢測值或計算值,可使用股線伸長率αm,亦可使用根據該股線伸長率αm所算出的纖維繩30之伸長率βm。進而,亦可使用根據股線伸長率αm或纖維繩30之伸長率βm所算出的張力Tm。 In addition, the control device 43 is configured as follows: when the detected value αm of the elongation detection device 20 or the calculated values βm and Tm related to the tension of the mooring rope 30 calculated based on the detected value αm exceed the preset alarm values αc, βc, and Tc, either operation of outputting an alarm or outputting a signal is performed. The strand elongation αm may be used as the detection value or calculation value of the elongation detection device 20, or the elongation βm of the fiber rope 30 calculated from the strand elongation αm may be used. Furthermore, the tension Tm calculated from the strand elongation αm or the elongation βm of the fiber rope 30 may also be used.

一般而言,即便為船舶1被繋泊於棧橋2之狀態,繋泊索30之張力T亦除了受到成為相對長時間之變化的潮水漲落或浪潮、船舶之載貨之裝卸狀態之影響以外,還受到成為相對短時間之變化的拍打棧橋2之自然波及來自在附近航行之船舶之波浪之影響。繋泊索30之張力T於短期內,因船舶1受到該等波浪導致船體搖擺而產生之變動之影響較大,如圖12所例示般,隨時間經過而變動。 In general, even when the ship 1 is moored to the pier 2, the tension T of the mooring rope 30 is not only affected by the ebb and flow of the tide or the tide, which is a relatively long-term change, and the loading and unloading state of the ship's cargo, but also by the natural wave that beats the pier 2 and the waves from ships sailing nearby, which are relatively short-term changes. In the short term, the tension T of the mooring rope 30 is greatly affected by the fluctuation of the ship 1 due to the swaying of the ship due to the waves, and changes with time as illustrated in FIG. 12 .

因此,如圖13所示,亦考慮到該等之時間性變動而設定相當於斷裂荷重Fd的股線伸長率αd,與此相對,設定警報荷重Fc,並設定相當於該警報荷重Fc的警報值αc。再者,亦可代替股線伸長率αd及警報值αc,而使用纖維繩30之伸長率βd及警報值βc、或張力Td及警報值Tc。 Therefore, as shown in FIG. 13 , the strand elongation αd corresponding to the breaking load Fd is set in consideration of these time-dependent changes, and an alarm load Fc is set corresponding to this, and an alarm value αc corresponding to the alarm load Fc is set. Furthermore, instead of the strand elongation αd and the alarm value αc, the elongation βd and the alarm value βc of the fiber rope 30, or the tension Td and the alarm value Tc may be used.

再者,該預先被設定之警報值αc、βc、Tc之設定時期只要為判定之前即可,未必為固定值,亦可為基於氣象.海象等之干擾因素、繋泊索30之劣化程度所被更新的值。又,警報可為蜂鳴器或聲音訊息等之聽覺性者,亦可為紅色燈之閃爍等視覺性者。又,作為信號,可考慮為使其他之警報裝置啟動的信號、被使用在用於控制進行繋泊索30之捲取的繋泊用設備42的信號等。 Furthermore, the setting period of the pre-set alarm values αc, βc, Tc only need to be before the judgment, not necessarily a fixed value, but also based on the weather. An updated value of disturbance factors such as walruses and the degree of deterioration of the mooring rope 30 . In addition, the alarm may be audible such as a buzzer or an audio message, or may be visual such as blinking of a red light. Moreover, as a signal, the signal which activates another alarm device, the signal used for controlling the mooring equipment 42 which performs winding-up of the mooring rope 30, etc. are considered.

又,於本發明之實施形態之繋泊索監視方法中,使用繋泊索30將船舶1繋泊於棧橋2時利用伸長率檢測裝置20檢測構成繋泊索30的纖維繩之伸長率βm,根據上述伸長率檢測裝置20之檢測值αm(或βm)算出繋泊索30之張力Tm。再者,於以下之說明中,使用股線伸長率αm進行說明,但亦可代替股線伸長率αm而使用纖維繩之伸長率βm。 In addition, in the mooring rope monitoring method according to the embodiment of the present invention, when the ship 1 is moored to the pier 2 using the mooring rope 30, the elongation βm of the fiber rope constituting the mooring rope 30 is detected by the elongation detection device 20, and the tension Tm of the mooring rope 30 is calculated from the detection value αm (or βm) of the elongation detection device 20. In addition, in the following description, the strand elongation αm is used for description, but instead of the strand elongation αm, the elongation βm of the fiber rope may be used.

根據該繋泊索監視方法,並非根據施加至纖維繩30的張力T算出繋泊索30之張力Tm,而是根據預先被設定的股線伸長率αm與張力Tm之關係,或者基於當時所剛獲得的股線伸長率αm與張力Tm之關係,根據伸長率檢測裝置20之檢測值αm算出繋泊索30之張力Tm,因此,不僅可更高精度地算出在繋泊作業中、繋泊作業結束時之繋泊索30之張力Tm,亦可更高精度地算出正在繋泊時之繋泊索30之張力Tm。 According to this mooring rope monitoring method, the tension Tm of the mooring rope 30 is not calculated from the tension T applied to the fiber rope 30, but the tension Tm of the mooring rope 30 is calculated from the detection value αm of the elongation detection device 20 based on the relationship between the preset strand elongation αm and the tension Tm, or based on the relationship between the strand elongation αm and the tension Tm just obtained at that time. The tension Tm of the mooring rope 30 at the time of mooring can also be calculated with higher accuracy.

又,於該繋泊索監視方法中,於所測量出之伸長率αm超過預先被設定的警報值αc之情形時,輸出警報或輸出信號,如此能以相對簡單之構成檢測繋泊索30之張力Tm,由此可檢測纖維繩30之斷裂之前兆,從而預測及避免繋泊索30之斷裂。 In addition, in the mooring rope monitoring method, when the measured elongation αm exceeds the preset alarm value αc, an alarm or signal is output, so that the tension Tm of the mooring rope 30 can be detected with a relatively simple structure, thereby detecting the precursor of the breakage of the fiber rope 30, thereby predicting and avoiding the breakage of the mooring rope 30.

於該方法中,使用伸長率αm作為斷裂之警報,但在根據伸長率檢測裝置20之檢測值αm算出繋泊索30之張力Tm之方法中,對於從設計容許負荷之大小至30%~50%以上之負荷,所被算出的張力Tm之精度變高。又,纖維繩30之材料為芳香族聚醯胺纖維等之高強度纖維者時,彈性係數穩定,因此精度相對變高。 In this method, the elongation αm is used as an alarm for fracture, but in the method of calculating the tension Tm of the mooring rope 30 based on the detection value αm of the elongation detection device 20, the accuracy of the calculated tension Tm becomes higher for a load of 30% to 50% or more from the design allowable load. In addition, when the material of the fiber rope 30 is a high-strength fiber such as aramid fiber, the elastic coefficient is stable, so the accuracy is relatively high.

進而,於該繋泊索監視系統40中,亦可設為考慮到纖維繩30之劣化程度δ的系統。於該情形時,成為如下之構成。即,控制裝置43根據以伸長率檢測裝置20所檢測出的纖維繩30之伸長率βm之值、及以在伸長率檢測裝置20之外另行地檢測纖維繩30之張力T的張力檢測裝置41所檢測出的張力(荷重)Tmm之值,判定纖維繩30之劣化程度δ,根據劣化程度δ使警報值βc之值降低。 Furthermore, this mooring rope monitoring system 40 may be a system that considers the degree of deterioration δ of the fiber rope 30 . In this case, it becomes the following structure. That is, the control device 43 determines the degree of deterioration δ of the fiber rope 30 based on the value of the elongation βm of the fiber rope 30 detected by the elongation detection device 20 and the value of the tension (load) Tmm detected by the tension detection device 41 that separately detects the tension T of the fiber rope 30 in addition to the elongation detection device 20, and lowers the value of the alarm value βc according to the degree of deterioration δ.

即,繋泊索監視系統40係具備有伸長率檢測裝置20、張力檢測裝置41及控制裝置43而所構成,該伸長率檢測裝置20檢測纖維繩30之伸長率βm之值,該張力檢測裝置41係在伸長率檢測裝置20之外另行檢測纖維繩30之張力T,該控制裝置43根據以伸長率檢測裝置20所檢測出的纖維繩30之伸長率βm之值及以張力檢測裝置41所檢測出的張力(荷重)Tmm之值,判定纖維繩30之劣化程度δ,根據劣化程度δ使警報值βc之值降低。 That is, the mooring rope monitoring system 40 is composed of an elongation detection device 20, a tension detection device 41, and a control device 43. The elongation detection device 20 detects the value of the elongation βm of the fiber rope 30, and the tension detection device 41 detects the tension T of the fiber rope 30 in addition to the elongation detection device 20. The detected value of the tension (load) Tmm determines the degree of deterioration δ of the fiber rope 30, and the value of the alarm value βc is lowered according to the degree of deterioration δ.

換言之,繋泊索監視系統40之繋泊索監視方法具有 如下步驟:利用伸長率檢測裝置20檢測纖維繩30之伸長率βm之值的步驟;利用張力檢測裝置41在伸長率檢測裝置20之外另行檢測纖維繩30之張力T的步驟;利用控制裝置43,根據以伸長率檢測裝置20所檢測出的纖維繩30之伸長率βm之值及以張力檢測裝置41所檢測出的張力(荷重)Tmm之值,判定纖維繩30之劣化程度δ的步驟;及根據劣化程度δ使警報值βc之值降低的步驟。 In other words, the mooring line monitoring method of the mooring line monitoring system 40 has The steps are as follows: the step of using the elongation detection device 20 to detect the value of the elongation βm of the fiber rope 30; the step of using the tension detection device 41 to additionally detect the tension T of the fiber rope 30 in addition to the elongation detection device 20; using the control device 43 to determine the degree of deterioration δ of the fiber rope 30 according to the value of the elongation βm of the fiber rope 30 detected by the elongation detection device 20 and the value of the tension (load) Tmm detected by the tension detection device 41; A step of reducing the value of the alarm value βc according to the degree of deterioration δ.

該張力檢測裝置41未必僅為固定型張力計,亦可使用可攜型張力計(市售品等),進而亦可使用具備有在本發明之繋泊索監視系統40中所使用的檢測部21而以能算出張力之方式所被檢驗的纖維繩30。而且,作為配置位置,可被設於繋於甲板1b上之繋泊用構件1a的繋泊索30,又,亦可被設於繋於棧橋2之繋泊用構件2a的繋泊索30。 The tension detection device 41 does not necessarily have to be a fixed tension gauge, and a portable tension gauge (commercially available, etc.) may also be used, and furthermore, the fiber rope 30 that is inspected so as to be able to calculate the tension may be used that includes the detection unit 21 used in the mooring rope monitoring system 40 of the present invention. Moreover, as an arrangement position, the mooring rope 30 of the mooring member 1a tied to the deck 1b may be provided, and the mooring rope 30 of the mooring member 2a tied to the jetty 2 may be provided.

關於該劣化程度δ之判定,有以下之第1方法及第2方法。於第1方法中,習知是將用於繋泊已達既定期間之纖維繩之一部分切斷,從船上帶下後帶回至繩製造所等,進行拉伸試驗裝置,測定所斷裂的荷重,確認劣化程度,因此,於已儲存有以該拉伸試驗裝置所測定出的應力應變線圖之資料之情形時,與此對照而推斷纖維繩之劣化狀態、斷裂荷重。 Regarding the determination of the degree of deterioration δ, there are the following first method and second method. In the first method, it is known to cut a part of the fiber rope used for mooring for a predetermined period of time, take it off the ship and bring it back to the rope manufacturing plant, etc., and perform a tensile test device to measure the broken load to confirm the degree of deterioration. Therefore, when the data of the stress-strain diagram measured by the tensile test device is stored, the deterioration state and the breaking load of the fiber rope are estimated in comparison with this.

另一方面,於未儲存有上述資料之情形時,利用第2方法,根據相對於同一荷重之伸長率之增加或相對於同一伸長率之荷重之減少,推定因經年劣化等所引起的應力應變線圖之偏移程度,視需要進行外插等,由此推定斷裂荷重點。即,可著眼於纖維繩30因經年劣化等,相對於同一荷重的伸長率或相對於同一伸長率的荷重產生變化的情形,以如下方式算出。 On the other hand, when the above data is not stored, use the second method to estimate the degree of deviation of the stress-strain diagram due to aging deterioration, etc., based on the increase in elongation relative to the same load or the decrease in load relative to the same elongation, and extrapolation as necessary to estimate the point of fracture load. That is, it can be calculated as follows, focusing on changes in the elongation of the fiber rope 30 with respect to the same load or the load with the same elongation due to aging deterioration of the fiber rope 30 .

於該第2方法中,即便纖維繩30被施加相同之張力(荷重)Tmm,纖維繩30之伸長率βm亦因經年劣化而逐漸變大,因此纖維繩30之伸長率βm之值與以張力檢測裝置41所檢測出的張力(荷重)Tmm之比γ即「γ=(伸長率βm)/(張力(荷重)Tmm)」逐漸變大。 In the second method, even if the same tension (load) Tmm is applied to the fiber rope 30, the elongation βm of the fiber rope 30 gradually increases due to the deterioration over time, so the ratio γ of the value of the elongation βm of the fiber rope 30 to the tension (load) Tmm detected by the tension detection device 41, that is, "γ=(elongation βm)/(tension (load) Tmm)" gradually increases.

因此,如圖16所示,於纖維繩30之新品時(a)、經過某種程度之時間後之(b)時點、(c)時點的纖維繩30中,根據所測定出的Tmmj及βmj,算出表示纖維繩之伸長率βm與張力(荷重)Tmm之關係的曲線Lc之資料Lc(a)、Lc(b)、Lc(c)。 Therefore, as shown in FIG. 16, the data Lc(a), Lc(b), and Lc(c) of the curve Lc representing the relationship between the elongation βm and the tension (load) Tmm of the fiber rope 30 are calculated based on the measured Tmmj and βmj of the fiber rope 30 when it is new (a) and after a certain period of time (b) and (c).

並且,於著眼於相對於同一張力(荷重)Tmm的伸長率βm之變化之情形時,將預先設定的纖維繩之伸長率βmi、或預先設定的張力(荷重)Tmmi中的γi以「γi=βmi/Tmm」定義,將纖維繩之伸長率βmi之i=1~n中之平均值γ作為γ(a)=Σ〔βmi(a)/Tmmi(a)〕/n、γ(b)=Σ〔βmi(b)/Tmmi(b)〕/n、γ(c)=Σ〔βmi(c)/Tmmi(c)〕/n算出。而且,將γ(r)作為基準值,將劣化程度δ定義為「δ=γ/γ(r)」,算出δ(a)=γ(a)/γ(r)、δ(b)=γ(b)/γ(r)、δ(c)=γ(c)/γ(r)。 And, when focusing on the change of the elongation βm with respect to the same tension (load) Tmm, the elongation βmi of the preset fiber rope or γi in the preset tension (load) Tmmi is defined as “γi=βmi/Tmm”, and the average value γ among i=1~n of the elongation βmi of the fiber rope is taken as γ(a)=Σ[βmi(a)/Tmmi(a)]/n, γ(b)=Σ[β Mi(b)/Tmmi(b)]/n, γ(c)=Σ[βmi(c)/Tmmi(c)]/n are calculated. Furthermore, with γ(r) as a reference value, the degree of deterioration δ is defined as "δ=γ/γ(r)", and δ(a)=γ(a)/γ(r), δ(b)=γ(b)/γ(r), and δ(c)=γ(c)/γ(r) are calculated.

另一方面,於著眼於相對於同一伸長率βm的張力(荷重)Tmm之變化之情形時,如圖16所示,使用預先設定的纖維繩之伸長率βmi時之張力(荷重)Tmmi(a)、Tmmi(b)、Tmmi(c),將各纖維繩之伸長率βmi時之劣化程度δi使用各張力(荷重)之基準值Tmmi(r)以「δi=Tmmi/Tmmi(r)」定義,算出δi(a)=Tmmi(a)/Tmmi(r)、δi(b)=Tmmi(b)/Tmmi(r)、δi(c)=Tmmi(c)/Tmmi(r)。進而,以此為背景,將繩30之劣化程度δ以「δ =〔Σδi〕/n」定義,算出纖維繩之伸長率βmi之i=1~n時之平均值、δ(a)=〔Σδi(a)〕/n、δ(b)=〔Σδi(b)〕/n、δ(c)=〔Σδi(c)〕/n。 On the other hand, when focusing on the change of the tension (load) Tmm with respect to the same elongation βm, as shown in FIG. 16, using the preset tension (load) Tmmi(a), Tmmi(b), and Tmmi(c) at the elongation βmi of the fiber rope, the degree of deterioration δi at the elongation βmi of each fiber rope is calculated using the reference value Tmmi(r) of each tension (load) as "δi=Tmmi/Tmmi(r)" Define and calculate δi(a)=Tmmi(a)/Tmmi(r), δi(b)=Tmmi(b)/Tmmi(r), δi(c)=Tmmi(c)/Tmmi(r). Furthermore, based on this background, the deterioration degree δ of the rope 30 is expressed as "δ =〔Σδi〕/n' is defined to calculate the average value of the elongation rate βmi of the fiber rope when i=1~n, δ(a)=〔Σδi(a)]/n, δ(b)=〔Σδi(b)]/n, δ(c)=〔Σδi(c)]/n.

作為該等基準值γ(r)、Tmmi(r),可設為纖維繩30之新品時(a)之值γ(a)、Tmmi(a),亦可使用以預先進行的實驗之結果、計算等所設定的值,但若使用纖維繩30之新品時(a)之值γ(a)、Tmmi(r),則可考慮纖維繩30之各個的性質(製造時之差異)。 As these reference values γ(r) and Tmmi(r), the values γ(a) and Tmmi(a) at the time (a) of the new fiber rope 30 can be used, and the values set based on the results of experiments and calculations performed in advance can also be used. However, if the values γ(a) and Tmmi(r) at the time (a) of the fiber rope 30 are new, the properties (differences at the time of manufacture) of the fiber rope 30 can be considered.

藉由該等方法,算出纖維繩30之劣化程度δ,如圖17所示,根據該劣化程度δ,使警報值βc之值降低。例如變更為βc(b)=βc(a)/γ(b)等。即,隨著劣化程度δ增加,連續性或階段性地使警報值βc之值降低。該劣化程度δ與警報值βc之關係可藉由預先實驗、計算等而設定。藉此,可基於繋泊索30之劣化程度δ更新及調整警報值βc之值。 By these methods, the degree of deterioration δ of the fiber rope 30 is calculated, and as shown in FIG. 17 , the value of the alarm value βc is lowered according to the degree of deterioration δ. For example, change to βc(b)=βc(a)/γ(b) or the like. That is, as the degree of deterioration δ increases, the value of the warning value βc decreases continuously or stepwise. The relationship between the degree of deterioration δ and the alarm value βc can be set by preliminary experiments, calculations, and the like. Thereby, the value of the alarm value βc can be updated and adjusted based on the degree of deterioration δ of the mooring rope 30 .

再者,上述使用「纖維繩之伸長率βm」及「警報值βc」作為「伸長率」及「警報值」,但亦可取代之而使用「股線伸長率αm」及「警報值αc」、「張力Tm」及「警報值Tc」。 Furthermore, the "elongation rate βm of fiber rope" and "alarm value βc" are used as "elongation rate" and "alarm value" above, but "strand elongation rate αm" and "alarm value αc", "tension Tm" and "alarm value Tc" may be used instead.

進而,控制裝置43係以如下方式構成:於纖維繩30之劣化程度δ超過預先被設定的更換時期警告值δc之情形時,警告纖維繩30已達到更換時期。 Furthermore, the control device 43 is configured to warn that the fiber rope 30 has reached the replacement time when the degree of deterioration δ of the fiber rope 30 exceeds a preset replacement time warning value δc.

即,繋泊索監視系統40之控制裝置43係具備有如下功能而所構成:算出纖維繩30之劣化程度δ的功能;將所被算出的劣化程度δ與預先被設定的更換時期警告值δc進行比較的功能;於判定為劣化程度δ已超過更換時期警告值δc之情形時,警告纖維繩30已達到更換時期的功能。 That is, the control device 43 of the mooring rope monitoring system 40 is configured with the following functions: a function of calculating the degree of deterioration δ of the fiber rope 30; a function of comparing the calculated degree of deterioration δ with a preset replacement time warning value δc;

換言之,繋泊索監視系統40之繋泊索監視方法具有 如下步驟:算出纖維繩30之劣化程度δ的步驟;將所被算出的劣化程度δ與預先被設定的更換時期警告值δc進行比較的步驟;於判定為劣化程度δ超過更換時期警告值δc之情形時,警告纖維繩30已達到更換時期的步驟。 In other words, the mooring line monitoring method of the mooring line monitoring system 40 has The steps are as follows: a step of calculating the degree of deterioration δ of the fiber rope 30; a step of comparing the calculated degree of deterioration δ with a preset replacement time warning value δc; and a step of warning that the fiber rope 30 has reached the replacement time when it is determined that the degree of deterioration δ exceeds the replacement time warning value δc.

該更換時期警告用之劣化程度值δc係藉由實驗、計算等而預先設定。藉此,若纖維繩30之劣化程度δ進展,則產生繋泊時斷裂之虞,但藉由該警告,可於適當之時期更換纖維繩30而避免纖維繩30之斷裂,因此,可提高繋泊時之安全性。 The deterioration degree value δc for this replacement time warning is set in advance by experiments, calculations, and the like. Thereby, if the degree of deterioration δ of the fiber rope 30 progresses, there may be a risk of breakage during mooring, but with this warning, the fiber rope 30 can be replaced at an appropriate time to avoid breakage of the fiber rope 30, and therefore, safety during mooring can be improved.

圖18示出關於基於該纖維繩30之劣化程度δ而進行警報值βc之調整及纖維繩30之更換時期之判定的控制方法的控制流程之一例。於該圖18之控制流程中,當該控制裝置43之開關被開啟時,自上位之控制流程被喚起而開始圖18之控制流程。然後,於步驟S11中,輸入初始值。作為該初始值,具有作為判定用數值所使用的成為基準之「張力-伸長率之關係」、針對新品之警報值βc等。 FIG. 18 shows an example of a control flow related to a control method for adjusting the alarm value βc and determining when to replace the fiber rope 30 based on the degree of deterioration δ of the fiber rope 30 . In the control flow of FIG. 18, when the switch of the control device 43 is turned on, the control flow from the upper level is called up and the control flow of FIG. 18 starts. Then, in step S11, an initial value is input. As the initial value, there are the "tension-elongation relationship" used as a reference as a numerical value for judgment, an alarm value βc for a new product, and the like.

於接下來之步驟S12中開始進行劣化判斷。於該劣化判斷中,在步驟S13中對作為對象的纖維繩30之張力(荷重)Tmmi及伸長率βmi進行測定,在步驟S14中根據該所測定出之張力(荷重)Tmm與伸長率βm之關係算出劣化程度δ。 In the following step S12, the deterioration judgment is started. In this deterioration judgment, the tension (load) Tmmi and elongation βmi of the target fiber rope 30 are measured in step S13, and the degree of deterioration δ is calculated from the relationship between the measured tension (load) Tmm and elongation βm in step S14.

於接下來之步驟S15中進行警報值βc之調整,設定新的警報值βc。然後,輸出或更新該新的警報值βc,於上位之控制流程等中使用該警報值βc,判定是否發出警報。 In the next step S15, the alarm value βc is adjusted, and a new alarm value βc is set. Then, the new alarm value βc is output or updated, and the alarm value βc is used in the upper control flow to determine whether to issue an alarm.

又,於接下來之步驟S16中判定纖維繩30之更換時期。而且,於判定為更換時期之情形時,發出已為更換時期之警告。 之後返回而退回至步驟S12,重複進行步驟S12~步驟S16。然後,切斷控制裝置43之開關等,發出結束信號,該控制流程被中斷,如此則自各步驟返回,退回至上位之控制流程,該上位之控制流程結束,並且圖18之控制流程亦結束,從而結束該控制流程。 Moreover, the replacement time of the fiber rope 30 is judged in the following step S16. And, when it is judged that it is the replacement time, a warning that it is the replacement time is issued. After that, return to step S12, and repeat step S12 to step S16. Then, cut off the switch of control device 43 etc., send end signal, this control flow is interrupted, so then return from each step, return to the upper control flow, this upper control flow ends, and the control flow of Fig. 18 also ends, thereby ends this control flow.

其次,本發明之實施形態之繋泊管理系統50係具備上述繋泊索監視系統40而所構成。又,控制裝置43係以如下方式所構成:於使用繋泊索30的繋泊作業中、繋泊作業完成時及繋泊中之至少任一時期,以自繋泊索監視系統40所獲得的各繋泊索30之張力T成為預先被設定的目標張力Tt之方式,控制對各繋泊索30捲取的繋泊用設備42。 Next, the mooring management system 50 according to the embodiment of the present invention includes the mooring rope monitoring system 40 described above. In addition, the control device 43 is configured to control the mooring equipment 42 that winds up each mooring rope 30 so that the tension T of each mooring rope 30 obtained from the mooring rope monitoring system 40 becomes a preset target tension Tt during mooring work using the mooring rope 30 , when the mooring work is completed, and during mooring.

再者,作為用於該各繋泊索30之自動調整的各繋泊索30中之檢測部21之配置,較佳為配置在拉著有纖維繩30之成為直線部的部分且位於船上(或陸地之繋纜樁附近)的部分。又,亦可求出纖維繩30之彈性係數η,基於預先被設定的彈性係數η與張力T之關係,根據該彈性係數η計算張力T,基於該張力T,監視或自動調整各繋泊索30之張力T之分擔。 Furthermore, the detection unit 21 in each mooring rope 30 used for the automatic adjustment of the mooring ropes 30 is preferably disposed on a part on a ship (or in the vicinity of a mooring bollard on land) that pulls the straight portion of the fiber rope 30 . In addition, the elastic coefficient η of the fiber rope 30 can also be obtained, based on the relationship between the preset elastic coefficient η and the tension T, the tension T can be calculated from the elastic coefficient η, and based on the tension T, the share of the tension T of each mooring rope 30 can be monitored or automatically adjusted.

進而,藉由一面考慮船舶1之氣象.海象或潮流等資料,以及基於來自GPS(全球定位系統)的信號所算出的船舶之姿勢、船體運動等之狀態,一面基於自檢測部21所獲得的張力Tm之資料,操作或控制繋泊用設備42,尤其藉由進行移動調整,可實現更細緻之繋泊管理。 Furthermore, by considering the weather of the ship 1 on the one hand. Data such as walruses and currents, and the posture and body motion of the ship calculated based on signals from the GPS (Global Positioning System) and the state of the ship's motion, while operating or controlling the mooring equipment 42 based on the data of the tension Tm obtained from the detection unit 21, especially by performing movement adjustments, can realize more detailed mooring management.

根據該構成,可使用自繋泊索監視系統40所獲得的各繋泊索30之張力Tm,故不僅可避免各繋泊索30之斷裂,亦可藉由調整各繋泊索30之張力T使繋泊狀態成為更佳之繋泊狀態, 亦可使被繋泊的船舶1之運動不會變大,對於氣象.海象或船舶之裝卸狀態、入射至船舶1的波浪等之干擾,可時時刻刻地設為更佳之繋泊狀態。而且,藉由與張力檢測裝置41組合算出彈性係數η,可診斷劣化情況。 According to this configuration, the tension Tm of each mooring rope 30 obtained from the mooring rope monitoring system 40 can be used, so not only can the breakage of each mooring rope 30 be avoided, but also the mooring state can be made into a better mooring state by adjusting the tension T of each mooring rope 30, It can also prevent the movement of the moored ship 1 from becoming larger, which is important for weather. The loading and unloading state of the walrus or the ship, the disturbance of the waves incident on the ship 1, etc., can be set to a better mooring state at all times. Furthermore, by calculating the elastic coefficient η in combination with the tension detection device 41, the deterioration condition can be diagnosed.

其次,對本發明之繋泊索監視方法及繋泊管理方法進行說明。於該繋泊索監視方法中,於使用繋泊索30將船舶1繋泊於棧橋2時利用伸長率檢測裝置20測量構成繋泊索30的纖維繩之伸長率βm,根據伸長率檢測裝置20之檢測值αm(或βm)算出纖維繩30之張力Tm。 Next, the mooring rope monitoring method and mooring management method of the present invention will be described. In this mooring rope monitoring method, when the ship 1 is moored to the pier 2 using the mooring rope 30, the elongation βm of the fiber rope constituting the mooring rope 30 is measured by the elongation detection device 20, and the tension Tm of the fiber rope 30 is calculated based on the detection value αm (or βm) of the elongation detection device 20.

根據該繋泊索監視方法,並非根據施加至纖維繩30的荷重F算出繋泊索30之張力Tm,而是根據預先被設定的伸長率αm與張力Tm之關係,或者基於當時所剛獲得的伸長率αm與張力(荷重)Tmm之關係,根據伸長率檢測裝置20之檢測值αm算出繋泊索30之張力Tm,因此,不僅可更高精度地算出繋泊作業中、繋泊作業結束時的繋泊索30之張力Tm,亦可更高精度地算出正在繋泊時的繋泊索30之張力Tm。 According to this mooring rope monitoring method, the tension Tm of the mooring rope 30 is not calculated from the load F applied to the fiber rope 30, but the tension Tm of the mooring rope 30 is calculated from the detection value αm of the elongation detection device 20 based on the relationship between the preset elongation αm and the tension Tm, or the relationship between the elongation αm and the tension (load) Tmm just obtained at that time. The tension Tm of the mooring rope 30 at the time of mooring can be calculated with higher accuracy even if the tension Tm is 0.

又,於本發明之實施形態之繋泊管理方法中,於使用複數根繋泊索30將船舶1繋泊於棧橋2等時,對於各繋泊索30,根據以被撚入至繋泊索30的伸長率檢測裝置20所測量出的檢測值αm(或βm),算出繋泊索30之張力Tm,並且於使用繋泊索30之繋泊作業中、繋泊作業完成時及繋泊中之至少任一時期,對於各繋泊索30,以所算出的繋泊索30之張力Tm成為預先被設定的各目標張力Tt之方式,對捲取各繋泊索30的繋泊用設備42進行控制。 In addition, in the mooring management method according to the embodiment of the present invention, when the ship 1 is moored to the pier 2 or the like using a plurality of mooring lines 30, the tension Tm of the mooring lines 30 is calculated for each mooring line 30 based on the detection value αm (or βm) measured by the elongation detection device 20 twisted into the mooring line 30, and at least any period during the mooring operation using the mooring line 30, when the mooring operation is completed, or during mooring. The mooring rope 30 controls the mooring equipment 42 that winds up each mooring rope 30 so that the calculated tension Tm of the mooring rope 30 becomes each preset target tension Tt.

根據該繋泊管理方法,不僅可避免各繋泊索30之斷 裂,亦可藉由調整各繋泊索30之張力T而使繋泊狀態成為更佳之繋泊狀態,使被繋泊之船舶1之運動不會變大,對於氣象.海象、船舶1之裝卸狀態,可時時刻刻地設為更佳之繋泊狀態。 According to this mooring management method, not only can the breakage of each mooring rope 30 be avoided, The mooring state can also be adjusted to a better mooring state by adjusting the tension T of each mooring rope 30, so that the movement of the moored ship 1 will not become larger. The loading and unloading status of walruses and ships 1 can be set to a better mooring status all the time.

因此,根據上述構成之繋泊索監視系統40、繋泊管理系統50、繋泊索監視方法及繋泊管理方法,能以相對簡單之構成,檢測繋泊索30之張力Tm,從而可預測及避免繋泊索30之斷裂。 Therefore, according to the mooring rope monitoring system 40, the mooring management system 50, the mooring rope monitoring method, and the mooring management method configured above, the tension Tm of the mooring rope 30 can be detected with a relatively simple structure, so that the breakage of the mooring rope 30 can be predicted and avoided.

1:船舶 1: ship

1a:甲板上之繋泊用構件 1a: Mooring components on deck

1b:甲板 1b: Deck

2:棧橋 2: Trestle

2a:棧橋側之繋泊用構件 2a: Mooring components on the trestle side

3:水面 3: water surface

21:檢測部(伸長率感測器) 21: Detection part (elongation sensor)

30:繋泊索(纖維繩) 30: mooring rope (fiber rope)

40:繋泊索監視系統 40:Mooring rope monitoring system

41:張力檢測裝置(可攜型張力計等) 41: Tension detection device (portable tension meter, etc.)

42:繋泊用設備(繋泊絞車等) 42: Mooring equipment (mooring winch, etc.)

43:控制裝置 43: Control device

43a:監控裝置 43a: Monitoring device

50:繋泊管理系統 50:Mooring management system

51:防舷材 51: Anti-bulk

Claims (16)

一種繋泊索監視系統,其特徵在於:其具備有伸長率檢測裝置及控制裝置所構成,該伸長率檢測裝置檢測構成繋泊船舶之繋泊索的纖維繩之伸長率,該控制裝置根據上述伸長率檢測裝置之檢測值算出上述繋泊索之張力。 A mooring rope monitoring system, characterized in that it is composed of an elongation detection device and a control device, the elongation detection device detects the elongation of the fiber rope constituting the mooring rope of a mooring ship, and the control device calculates the tension of the mooring rope based on the detection value of the elongation detection device. 如請求項1之繋泊索監視系統,其中,上述控制裝置係以如下方式所構成:於上述伸長率檢測裝置之檢測值或根據上述檢測值所算出的與上述繋泊索之張力相關的計算值超過預先被設定的警報值之情形時,則進行輸出警報或輸出信號之任一操作。 The mooring rope monitoring system according to claim 1, wherein the above-mentioned control device is configured as follows: when the detection value of the above-mentioned elongation detection device or the calculation value related to the tension of the mooring rope calculated based on the above-mentioned detection value exceeds a preset alarm value, any operation of outputting an alarm or outputting a signal is performed. 如請求項2之繋泊索監視系統,其中,上述控制裝置係以如下方式所構成:根據以上述伸長率檢測裝置所檢測出的上述纖維繩之伸長率之值、及以在上述伸長率檢測裝置之外另行檢測上述纖維繩之張力的張力檢測裝置所檢測出的張力值,判定上述纖維繩之劣化程度,並根據上述劣化程度使上述警報值之值降低。 The mooring rope monitoring system according to claim 2, wherein the control device is configured in such a manner that the degree of deterioration of the fiber rope is determined based on the elongation value of the fiber rope detected by the elongation detection device and the tension value detected by a tension detection device that separately detects the tension of the fiber rope in addition to the elongation detection device, and the value of the alarm value is reduced according to the degree of deterioration. 如請求項3之繋泊索監視系統,其中,上述控制裝置係以如下方式所構成:於上述劣化程度超過預先被設定的更換時期警告值之情形時,則警告上述纖維繩已達到更換時期。 The mooring rope monitoring system according to claim 3, wherein the control device is configured as follows: when the degree of deterioration exceeds a preset replacement time warning value, it warns that the fiber rope has reached the replacement time. 如請求項1至4中任一項之繋泊索監視系統,其中,上述伸長率檢測裝置具有檢測上述纖維繩之伸長率的索狀之檢測部,上述纖維繩於內部組入有上述檢測部。 The mooring rope monitoring system according to any one of claims 1 to 4, wherein the elongation detection device has a rope-shaped detection part for detecting the elongation of the fiber rope, and the fiber rope incorporates the detection part inside. 如請求項5之繋泊索監視系統,其中,上述纖維 繩係具有檢測部側連接器、控制裝置側連接器及保護構件所構成,該檢測部側連接器被連接至組入至上述纖維繩之股線之內部的上述檢測部或被連接至上述檢測部的測量用配線,且被配置於上述纖維繩之上述股線之外周;該控制裝置側連接器可脫離地接合於上述檢測部側連接器,且連接於控制裝置側配線電纜;該保護構件將上述檢測部側連接器及上述控制裝置側連接器一起與上述纖維繩覆蓋。 Such as the mooring rope monitoring system of claim 5, wherein the above-mentioned fiber The tether is composed of a detector-side connector, a control-device-side connector, and a protective member. The detector-side connector is connected to the detector-side connector incorporated into the strand of the fiber rope or the measurement wiring connected to the detector-part, and is disposed on the outer periphery of the strand of the fiber rope. The controller-side connector is detachably joined to the detector-side connector and connected to the control-device-side wiring cable. The protection member connects the detector-side connector and the control-device-side connector together with the fiber rope. cover. 如請求項5之繋泊索監視系統,其構成為,被組入至上述纖維繩之股線之內部的上述檢測部或連接於上述檢測部的測量用配線被連接至資料處理裝置,上述資料處理裝置將自上述檢測部所傳送的類比信號轉換成數位信號,並將上述數位信號利用有線或無線傳送至上述控制裝置,該資料處理裝置被設置於捲取上述纖維繩的繫泊用設備之內部或分開設置。 The mooring rope monitoring system according to Claim 5 is configured such that the detection part incorporated into the strands of the fiber rope or the measurement wiring connected to the detection part is connected to a data processing device, the data processing device converts the analog signal transmitted from the detection part into a digital signal, and transmits the digital signal to the control device by wire or wirelessly, and the data processing device is installed inside or separately from the mooring equipment that winds the fiber rope. 如請求項6之繋泊索監視系統,其構成為,被組入至上述纖維繩之股線之內部的上述檢測部或連接於上述檢測部的測量用配線被連接至設置在上述纖維繩之內部或表面上的資料處理裝置,上述資料處理裝置將自上述檢測部所傳送的類比信號轉換成數位信號,藉由經由設置於上述纖維繩之內部的有線信號傳送電纜的有線或來自設置於上述纖維繩之內部的無線信號發送器的無線,將上述數位信號經由中繼器或者直接傳送至上述控制裝置,該中繼器被設置於捲取上述纖維繩的繋泊用設備之內部或分開設置。 A mooring rope monitoring system according to claim 6, wherein the detection part incorporated into the strands of the fiber rope or the measurement wiring connected to the detection part is connected to a data processing device installed inside or on the surface of the fiber rope, the data processing device converts the analog signal transmitted from the detection part into a digital signal, and converts the digital signal to the digital signal via a wired signal transmission cable installed inside the fiber rope or wirelessly from a wireless signal transmitter installed inside the fiber rope. It is transmitted to the above-mentioned control device via a repeater, and the repeater is installed inside the mooring equipment that winds up the above-mentioned fiber rope or is installed separately. 如請求項7之繋泊索監視系統,其構成為,被組入至上述纖維繩之股線之內部的上述檢測部或連接於上述檢測部的測量用配線被連接至設置在上述纖維繩之內部或表面上的資料處理裝置,上述資料處理裝置將自上述檢測部所傳送的類比信號轉換成數位信號,藉由經由設置於上述纖維繩之內部的有線信號傳送電纜的有線或來自設置於上述纖維繩之內部的無線信號發送器的無線,將上述數位信號經由中繼器或者直接傳送至上述控制裝置,該中繼器被設置於捲取上述纖維繩的繋泊用設備之內部或分開設置。 A mooring rope monitoring system according to Claim 7, wherein the detection unit incorporated into the strands of the fiber rope or the measurement wiring connected to the detection unit is connected to a data processing device installed inside or on the surface of the fiber rope, the data processing device converts the analog signal transmitted from the detection unit into a digital signal, and converts the digital signal by wire through a wired signal transmission cable installed inside the fiber rope or wirelessly from a wireless signal transmitter installed inside the fiber rope. It is transmitted to the above-mentioned control device via a repeater, and the repeater is installed inside the mooring equipment that winds up the above-mentioned fiber rope or is installed separately. 如請求項6之繋泊索監視系統,其中,將上述檢測部分別配置於較上述纖維繩之線長方向之中央更靠一端側的前半部及較上述中央更靠另一端側的後半部,並且從配置於上述前半部的上述檢測部與配置於上述後半部的上述檢測部之間引出各上述檢測部或連接於各上述檢測部的測量用配線。 The mooring rope monitoring system according to claim 6, wherein the detection units are disposed in a front half closer to one end than a center of the fiber rope in a line length direction and a rear half closer to the other end than the center, and each detection unit or a measurement wiring connected to each detection unit is drawn from between the detection unit disposed in the front half and the detection unit disposed in the rear half. 如請求項7之繋泊索監視系統,其中,將上述檢測部分別配置於較上述纖維繩之線長方向之中央更靠一端側的前半部及較上述中央更靠另一端側的後半部,並且從配置於上述前半部的上述檢測部與配置於上述後半部的上述檢測部之間引出各上述檢測部或連接於各上述檢測部的測量用配線。 The mooring rope monitoring system according to claim 7, wherein the detection units are arranged in a front half closer to one end and a rear half closer to the other end than the center of the fiber rope in the line length direction, and each detection unit or a measurement wiring connected to each detection unit is drawn from between the detection unit disposed in the front half and the detection unit disposed in the rear half. 如請求項8之繋泊索監視系統,其中,將上述檢測部分別配置於較上述纖維繩之線長方向之中央更靠一端側的前半部及較上述中央更靠另一端側的後半部,並且從配置於上述前半部的上述檢測部與配置於上述後半部的上述檢測部之間引出各上 述檢測部或連接於各上述檢測部的測量用配線。 The mooring rope monitoring system according to claim 8, wherein the detection units are respectively arranged at the front half of the fiber rope on one end side and the second half of the center at the other end side from the center of the fiber rope in the line length direction, and each upper The detection unit or the measurement wiring connected to each of the detection units. 如請求項9之繋泊索監視系統,其中,將上述檢測部分別配置於較上述纖維繩之線長方向之中央更靠一端側的前半部及較上述中央更靠另一端側的後半部,並且從配置於上述前半部的上述檢測部與配置於上述後半部的上述檢測部之間引出各上述檢測部或連接於各上述檢測部的測量用配線。 The mooring rope monitoring system according to claim 9, wherein the detection units are disposed in a front half closer to one end than a center of the fiber rope in a line length direction and a rear half closer to the other end than the center, and each detection unit or a measurement wiring connected to each detection unit is drawn from between the detection unit disposed in the front half and the detection unit disposed in the rear half. 一種繋泊管理方法,其特徵在於:其具備有請求項1至13中任一項之繋泊索監視系統,上述控制裝置係以如下方式所構成:於使用上述繋泊索之繋泊作業中、繋泊作業完成時及繋泊中之至少任一情況,以自上述繋泊索監視系統所獲得的各繋泊索之張力成為預先被設定的目標張力之方式,對捲取各繋泊索的繋泊用設備進行控制。 A mooring management method, characterized in that it includes the mooring rope monitoring system according to any one of claims 1 to 13, and the control device is configured to control mooring equipment for winding each mooring rope so that the tension of each mooring rope obtained from the mooring rope monitoring system becomes a preset target tension during at least any one of mooring operations using the mooring ropes, when mooring operations are completed, and during mooring. 一種繋泊索監視方法,其特徵在於:在使用繋泊索將船舶繋泊時利用伸長率檢測裝置測量構成上述繋泊索的纖維繩之伸長率,根據上述伸長率檢測裝置之檢測值算出上述繋泊索之張力。 A method for monitoring a mooring line, characterized in that when a ship is moored by a mooring line, the elongation of the fiber rope constituting the mooring line is measured by an elongation detection device, and the tension of the mooring line is calculated based on the detection value of the elongation detection device. 一種繋泊管理系統,其特徵在於:在使用複數根繋泊索將船舶繋泊時,對於各上述繋泊索,根據以伸長率檢測裝置所測量出的檢測值而算出上述繋泊索之張力,該伸長率檢測裝置被撚入至上述繋泊索且測量構成上述繋泊索的纖維繩之伸長率,並且,於使用上述繋泊索之繋泊作業中、繋泊作業完成時及繋泊中之至少任一情況,對於各上述繋泊索,以所算出的上述繋泊索之張力成為預先被設定的各目標張力之方式,對捲取各上述繋泊索的繋泊用設備進行控制。 A mooring management system, characterized in that, when a ship is moored by a plurality of mooring lines, the tension of the mooring lines is calculated for each of the mooring lines based on a detection value measured by an elongation detection device that is twisted into the mooring lines and measures the elongation of fiber ropes constituting the mooring lines, and in at least any one of the mooring operation using the mooring lines, the completion of the mooring operation, and during mooring, the calculated tension is calculated for each of the mooring lines by The mooring equipment that winds up each of the mooring ropes is controlled so that the tension of the mooring ropes obtained becomes each target tension set in advance.
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